US10828400B2 - Low temperature, nanostructured ceramic coatings - Google Patents

Low temperature, nanostructured ceramic coatings Download PDF

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US10828400B2
US10828400B2 US14/734,520 US201514734520A US10828400B2 US 10828400 B2 US10828400 B2 US 10828400B2 US 201514734520 A US201514734520 A US 201514734520A US 10828400 B2 US10828400 B2 US 10828400B2
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coating
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nanostructured
ceramic
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Junghyun Cho
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Research Foundation of State University of New York
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L31/00Materials for other surgical articles, e.g. stents, stent-grafts, shunts, surgical drapes, guide wires, materials for adhesion prevention, occluding devices, surgical gloves, tissue fixation devices
    • A61L31/08Materials for coatings
    • A61L31/082Inorganic materials
    • A61L31/088Other specific inorganic materials not covered by A61L31/084 or A61L31/086
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L29/00Materials for catheters, medical tubing, cannulae, or endoscopes or for coating catheters
    • A61L29/08Materials for coatings
    • A61L29/10Inorganic materials
    • A61L29/106Inorganic materials other than carbon
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    • A61L29/00Materials for catheters, medical tubing, cannulae, or endoscopes or for coating catheters
    • A61L29/14Materials characterised by their function or physical properties, e.g. lubricating compositions
    • A61L29/16Biologically active materials, e.g. therapeutic substances
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L31/00Materials for other surgical articles, e.g. stents, stent-grafts, shunts, surgical drapes, guide wires, materials for adhesion prevention, occluding devices, surgical gloves, tissue fixation devices
    • A61L31/14Materials characterised by their function or physical properties, e.g. injectable or lubricating compositions, shape-memory materials, surface modified materials
    • A61L31/16Biologically active materials, e.g. therapeutic substances
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    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/30Treatment of water, waste water, or sewage by irradiation
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    • C02F1/72Treatment of water, waste water, or sewage by oxidation
    • C02F1/725Treatment of water, waste water, or sewage by oxidation by catalytic oxidation
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    • C08J7/00Chemical treatment or coating of shaped articles made of macromolecular substances
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    • C08J7/00Chemical treatment or coating of shaped articles made of macromolecular substances
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    • C25ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
    • C25DPROCESSES FOR THE ELECTROLYTIC OR ELECTROPHORETIC PRODUCTION OF COATINGS; ELECTROFORMING; APPARATUS THEREFOR
    • C25D9/00Electrolytic coating other than with metals
    • C25D9/04Electrolytic coating other than with metals with inorganic materials
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L2300/00Biologically active materials used in bandages, wound dressings, absorbent pads or medical devices
    • A61L2300/40Biologically active materials used in bandages, wound dressings, absorbent pads or medical devices characterised by a specific therapeutic activity or mode of action
    • A61L2300/404Biocides, antimicrobial agents, antiseptic agents
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J35/00Catalysts, in general, characterised by their form or physical properties
    • B01J35/002Catalysts characterised by their physical properties
    • B01J35/004Photocatalysts
    • B01J35/39
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C35/00Heating, cooling or curing, e.g. crosslinking or vulcanising; Apparatus therefor
    • B29C35/02Heating or curing, e.g. crosslinking or vulcanizing during moulding, e.g. in a mould
    • B29C35/08Heating or curing, e.g. crosslinking or vulcanizing during moulding, e.g. in a mould by wave energy or particle radiation
    • B29C35/0805Heating or curing, e.g. crosslinking or vulcanizing during moulding, e.g. in a mould by wave energy or particle radiation using electromagnetic radiation
    • B29C2035/0827Heating or curing, e.g. crosslinking or vulcanizing during moulding, e.g. in a mould by wave energy or particle radiation using electromagnetic radiation using UV radiation
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C59/00Surface shaping of articles, e.g. embossing; Apparatus therefor
    • B29C59/14Surface shaping of articles, e.g. embossing; Apparatus therefor by plasma treatment
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    • C02F2201/32Details relating to UV-irradiation devices
    • C02F2201/326Lamp control systems
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    • C02F2305/08Nanoparticles or nanotubes
    • CCHEMISTRY; METALLURGY
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    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F2307/00Location of water treatment or water treatment device
    • C02F2307/12Location of water treatment or water treatment device as part of household appliances such as dishwashers, laundry washing machines or vacuum cleaners
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
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    • C08J2323/00Characterised by the use of homopolymers or copolymers of unsaturated aliphatic hydrocarbons having only one carbon-to-carbon double bond; Derivatives of such polymers
    • C08J2323/02Characterised by the use of homopolymers or copolymers of unsaturated aliphatic hydrocarbons having only one carbon-to-carbon double bond; Derivatives of such polymers not modified by chemical after treatment
    • C08J2323/18Homopolymers or copolymers of hydrocarbons having four or more carbon atoms
    • C08J2323/20Homopolymers or copolymers of hydrocarbons having four or more carbon atoms having four to nine carbon atoms
    • C08J2323/22Copolymers of isobutene; butyl rubber
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    • C08J2331/00Characterised by the use of copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by an acyloxy radical of a saturated carboxylic acid, or carbonic acid, or of a haloformic acid
    • C08J2331/02Characterised by the use of omopolymers or copolymers of esters of monocarboxylic acids
    • C08J2331/04Homopolymers or copolymers of vinyl acetate
    • CCHEMISTRY; METALLURGY
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    • C08J2383/00Characterised by the use of macromolecular compounds obtained by reactions forming in the main chain of the macromolecule a linkage containing silicon with or without sulfur, nitrogen, oxygen, or carbon only; Derivatives of such polymers
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    • C25DPROCESSES FOR THE ELECTROLYTIC OR ELECTROPHORETIC PRODUCTION OF COATINGS; ELECTROFORMING; APPARATUS THEREFOR
    • C25D9/00Electrolytic coating other than with metals
    • C25D9/04Electrolytic coating other than with metals with inorganic materials
    • C25D9/08Electrolytic coating other than with metals with inorganic materials by cathodic processes
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/26Web or sheet containing structurally defined element or component, the element or component having a specified physical dimension
    • Y10T428/263Coating layer not in excess of 5 mils thick or equivalent
    • Y10T428/264Up to 3 mils
    • Y10T428/2651 mil or less
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T442/00Fabric [woven, knitted, or nonwoven textile or cloth, etc.]
    • Y10T442/20Coated or impregnated woven, knit, or nonwoven fabric which is not [a] associated with another preformed layer or fiber layer or, [b] with respect to woven and knit, characterized, respectively, by a particular or differential weave or knit, wherein the coating or impregnation is neither a foamed material nor a free metal or alloy layer
    • Y10T442/2525Coating or impregnation functions biologically [e.g., insect repellent, antiseptic, insecticide, bactericide, etc.]

Definitions

  • Brittle coatings usually do not fail by “wearing out”, but rather suffer from cracking, delamination and spallation. At least as important with respect to the usefulness of a coating on a product as wear resistance are bond strength (adhesion to the substrate) and toughness (the ability to withstand an impact or applied strain). It is in these additional properties that the nanoceramic coatings excel to a remarkable degree.
  • Water can be decomposed, using UV light, into oxygen and hydrogen, without the application of an external voltage, according to the following scheme: TiO 2 or ZnO+ hv ⁇ e ⁇ +h + 2 h + +2H 2 O ⁇ 2.OH ⁇ 2H + +H 2 O 2 e ⁇ +O 2 ⁇ .O 2 ⁇ 2.O 2 ⁇ +4HO.+H + ⁇ 2H 2 O 2 +2O 2 +H 2 H 2 O 2 ⁇ 2HO.
  • One way of processing nano-ceramic coatings at low temperatures is to take advantage of in-situ precipitated nanoparticles and nanostructures grown from aqueous solution.
  • Solution based deposition techniques thermalhydrolytic or electrochemical
  • Such solution deposition technique relies upon hydrolysis for converting soluble metal salts into precipitates of metal oxides, and under controlled conditions, the precipitates are nanostructured.
  • aqueous solution deposition provides “environment-friendly” processing without toxic or flammable solvents.
  • Low temperature processing has also shown versatility to generate various nanostructures. The growth of low-dimensional nanostructures (0-D, 1-D, 2-D) provides a means of enhancing the crystallinity of the solution-prepared films that is of importance for photocatalytic performance.
  • the coating process typically proceeds either with the formation of nanoparticles in solution near the surface of the substrate to be coated, with an agglomeration of particles and densification of the particles at the surface, or with the nucleation and growth of nanostructures at the surface of the substrate to be coated.
  • This process is typically driven by a supersaturation of a solution.
  • Three methods are available. First, immersion in a supersaturated solution leads to surface deposition. Second, a solution may be sprayed onto a surface, in either a fully controlled environment (to control, e.g., temperature, headspace gas composition and thus solution pH, etc.), or in air, with deposition occurring by precipitation of nanoparticles in the droplets, and the mechanical force of the spray. Third, an electrochemical reaction may be provided to locally increase the precipitation conditions for ceramic particles at or near the surface to be coated.
  • the substrate material may be Polyester (PES); Polyethylene terephthalate (PET); Polyethylene (PE); High-density polyethylene (HDPE); Polyvinyl chloride (PVC); Polyvinylidene chloride (PVDC); Polyvinylidene fluoride (PVDF) Low-density polyethylene (LDPE); Polypropylene (PP); Polystyrene (PS); High impact polystyrene (HIPS); Polyamides (PA) (Nylons); Acrylonitrile butadiene styrene (ABS); Polyethylene/Acrylonitrile Butadiene Styrene (PE/ABS); Polycarbonate (PC); Polycarbonate/Acrylonitrile Butadiene Styrene (PC/ABS); Polyurethanes (PU); Maleimide/Bismaleimide; Melamine formaldehyde (MF); Plastarch material; Phenolics (PF); Polyepoxide (Epoxy); Polyetheretherketone
  • the coated product is disposable (i.e., made for one time or seasonal use), and in such form may comprise a biodegradable or environmentally degradable polymer.
  • the photocatalytic coating is capable of rapidly degrading the substrate, such that after the single or limited use, the substrate rapidly degrades under ultraviolet (UV) illumination or natural sunlight.
  • the coated product is designed to be durable, and may be fabricated using a substrate material such as glass, ceramic, wood or metal.
  • Typically short duration use plasticware is made from different (and less costly) materials than long term use plasticware; further, products intended to be disposable tend to be photodegradable or biodegradable, while durable products typically avoid spontaneous degradation materials.
  • the hydrogen peroxide and hydroxyl radical are somewhat toxic to organisms living in the water, and therefore the technology can also be exploited to reduce mosquito populations.
  • standing water in old tires has been identified as a significant breeding ground for mosquitos. Therefore, if the inner wall of a tire is coated during manufacture with a photocatalytic coating, after it is removed from a vehicle, the coating should remain, and interact with sunlight to render the tire an inhospitable environment for mosquito larvae.
  • Other configuration traps may be provided to lure female mosquitos into laying their eggs in a self-sterilizing environment.
  • a biocidal device comprising at least one surface configured to retain natural rainwater and be exposed to sunlight, the at least one surface being coated with a nanostructured ceramic coating having a thickness in excess of 100 nm, formed by a deposition of at least one of titanium dioxide and zinc oxide nanostructures from a supersaturated aqueous ceramic precursor solution in a deposition process which does not require the at least one surface to be heated above 100° C., wherein the biocidal device produces larvicidal reaction products of rainwater when exposed to the sunlight.
  • a photocatalytic coating may be provided with a photocatalytic coating.
  • a UV light source gas discharge, fluorescent, LED, etc.
  • Personal articles such as toothbrushes, combs, hair brushes, etc.
  • a cabinet or case may be provided which provides a source of UV light when the object is not in use.
  • a dish washer may include an internal UV light source, to activate the photocatalytic effect for coated items contained inside. Indeed, the entire inside of the dish washer (or other enclosed space) may be coated with the photocatalytic coating, since this will generally increase the levels of hydroxyl radicals in the washwater, which in turn will facilitate cleaning of the contents.
  • the surface may be an exposed wetted surface of a clothes washer isolated from contact with clothes, the illumination system further comprising a source of UV light configured to supply UV light during operation of the clothes washer to the exposed wetted surface.
  • the surface may also be an interior surface of a refrigerator, the illumination system further comprising a source of UV light configured to supply UV light during operation of the refrigerator to the interior surface and a source of moisture to wet the interior surface.
  • a source of UV light configured to supply UV light during operation of the refrigerator to the interior surface and a source of moisture to wet the interior surface.
  • an odor detection sensor may be provided, along with an automated control to control at least the UV light in dependence on an output of the sensor.
  • the use of plastics in microwave ovens or with hot food causes concerns for some consumers who worry about toxic chemicals leaching out of the plastic, even when the plastic is BPA-free (Bisphelol A or BPA is an additive for plastic and is also used in some plastic coatings products that has been found to cause some harm in laboratory animals, though not specifically in humans).
  • the coating may be engineered to maintain the surface condition and configuration of the plasticware, and thus avoid or reduce deformation over time, and/or leaching of materials out of the plasticware.
  • the nanostructured ceramic coating generally does not itself contain leachable organic components, and therefore provides a barrier.
  • a preferred method for coating a plastic item is as follows.
  • the surface of the plastic which may have a mold release composition or other residual coating on it, is first cleaned, for example with freshly prepared piranha cleaning solution, i.e., H 2 O 2 and sulfuric acid.
  • piranha cleaning solution i.e., H 2 O 2 and sulfuric acid.
  • a typical mixture is 3:1 concentrated sulfuric acid to 30% hydrogen peroxide solution, though a range of 2:1 to 7:1 may be used.
  • Cleaning is conducted for 1-10 minutes at an appropriate temperature below 100° C., e.g., 60-90° C., though care is exercised to avoid significantly degrading the substrate, and the cleaning is ceased as soon as the surface is uniformly wetted and clean.
  • the substrate is then dried in dry nitrogen gas (N 2 ) blow, and treated with an O 2 plasma (Harrick Plasma, Ithaca, N.Y.) for 15 min to render the surface hydrophilic.
  • N 2 dry nitrogen gas
  • O 2 plasma Hard Plasma, It
  • the substrates are then placed in a beaker containing freshly prepared precursor solution.
  • the beaker was placed in an oil-bath, preset at 60-90° C., to perform the deposition.
  • the pH of the solution is maintained by addition of a suitable acid, such as HCl for TiCl 4 (pH ⁇ 1.5).
  • the process is preferably conducted at temperatures below 90° C., both to avoid damage to the substrate, and because the low temperature maintains a slow reaction rate and higher quality smaller crystals. As temperature increases, the reaction rate increases, and larger crystals with higher crystallinity result.
  • the coating may be facilitated by an electrochemical process.
  • the substrate is selected as one which is inherently conductive, or coated with a conductive surface, such as a metal.
  • hydrogen peroxide is added to the precursor solution, for example, 10 mM hydrogen peroxide in 5 mM TiCl 4 in 3:1 methanol-DI water.
  • the substrate is held at a cathodic deposition potential, with current held at a level which does not result in apparent hydrogen generation (bubbling), which might reduce coating quality.
  • the cathode voltage is held between about ⁇ 3V to ⁇ 5V with respect to a platinum foil reference electrode (anode) in the solution. pH and voltage may be adjusted to control both hydrogen bubble formation and corrosion of the conductive substrate.
  • the deposition is conducted to produce a coating of the desired thickness, and may be monitored by pH change (and amount of acid needed to titrate the solution to maintain pH), time and electrical current, etc., or by mechanical or functional measurements.
  • the precursor solution is changed at every hour to increase the deposition rate and to avoid any heavy particle agglomeration.
  • films were cleaned with ethanol and dried under mild N 2 blow.
  • Titania particles form electrochemical conversion of TiCl 4 to TiO 2 in the solution, via thermal-energy-driven homogeneous nucleation.
  • the thin film formation occurs by attraction and assembly of nanoparticles on substrate surface.
  • Precursor solution environment not only determines the nanoparticle assembly and the film microstructure, but also influences the phase of titania (amorphous, anatase, or rutile).
  • Films obtained from very low S ( ⁇ 63.9) solution typically have a distinct “leaf-like”-structured surface morphology, with traces of anisotropic structured growth extending from the substrate surface to the top edge of the film. Growth rates in low S precursor are higher than in high S precursor. With increasing supersaturation (i.e., S ⁇ 232.8), bulk precipitation becomes more dominant with less contribution toward film formation and hence, the film growth rate decreases.
  • a low S solution contains more HCl and less TiCl4. Increased HCl imparts a common ion (Cl ⁇ ) effect and prevents dissociation of TiCl4, and low supersaturation can therefore be achieved.
  • high S solution inherently has higher pH, whereas low S solution shows lower pH. Three phases of titania (namely rutile, anatase, and amorphous) are formed.
  • Zinc oxide (ZnO) is a direct wide band gap (3.4 eV) semiconductor, which is comparable to TiO 2 , while having several advantages over TiO 2 such as easy crystallization at low temperature, 1D anisotropic growth, and high electron mobility.
  • a hydrothermal process to produce the film employs low process temperatures, which permit use of flexible polymer substrates. Compared to other solution-based techniques which utilize open bath, the hydrothermal processing provides high controllability of nanostructures because of the mild deposition condition resulting from the higher solubility of zinc ions that, for example, titanium ions.
  • the surface of the plastic substrate which may have a mold release composition or other residual coating on it, is first cleaned, for example with freshly prepared piranha cleaning solution, i.e., H 2 O 2 and sulfuric acid.
  • piranha cleaning solution i.e., H 2 O 2 and sulfuric acid.
  • a typical mixture is 3:1 concentrated sulfuric acid to 30% hydrogen peroxide solution, though a range of 2:1 to 7:1 may be used.
  • Cleaning is conducted for 1-10 minutes at appropriate temperature, though care is exercised to avoid significantly degrading the substrate, and the cleaning is ceased after the surface is uniformly wetted and clean.
  • the substrate is then dried in dry nitrogen gas (N 2 ) blow, and treated with an O 2 plasma (Hayrick Plasma, Ithaca, N.Y.) for 15 min to render the surface hydrophilic.
  • N 2 dry nitrogen gas
  • O 2 plasma Heayrick Plasma, Ithaca, N.Y.
  • ZnO films may be grown by hydrothermal deposition.
  • Two types of precursors may, for example, be used: i) 20 mM zinc acetate dihydrate and 20 mM hexamethylenetetramine (HMT; Alfa Aesar); ii) 25 mM zinc nitrate hexahydrate (Alfa Aesar) and 25 mM HMT aqueous solution.
  • Seed layer coated substrate is immersed into the precursor solution.
  • the deposition may be conducted at 60-90° C.
  • the deposition may be, for example, 2-8 hours, and may be repeated to build up layer thickness and density. For example, 4 2-hour sessions may be conducted with a gentle wash and solution replacement between each deposition.
  • bulk precipitates may form, in the precursor solution, and therefore the solution may be replaced with a freshly prepared solution every 1-2 h.
  • the ZnO films were rinsed with deionized water, and blow dried with nitrogen gas.
  • Synthetic oxide films in aqueous solution are formed under an accelerated hydrolysis environment for a relatively short period.
  • Such hydrolysis process of precursor species strongly depends solution parameters such as pH, concentration and temperature.
  • the solubility of the oxides and their hydroxides need not be known, and the thermodynamics data may be used to calculate equilibrium solubility for the stable phases, from which the degree of supersaturation S can be calculated. It provides the driving force for nucleation and growth of the oxide nanostructures.
  • soluble species of Zn (II) ions include Zn 2+ , Zn(OH) + , Zn(OH) 2 , Zn(OH) 3 ⁇ , and Zn(OH) 4 2 ⁇ .
  • a complexing agent such as HMT (C 6 H 12 N 4 ) or dimethylamine borane [DMAB, BH 3 NH(CH 3 ) 2 ] is provided to assist in precipitating a ZnO phase. Due to the complexing agent, Zn 2+ cation also forms amine complexes such as Zn(NH 3 ) 4 2+ with NH 3 (aq) in moderately basic solution.
  • a higher degree of supersaturation S can be attained either by increasing temperature or by increasing pH of the solution, so subsequent precipitation can be accelerated.
  • the nanorods from a zinc acetate precursor solution tend to show straighter and more densely packed structure while those from a zinc nitrate precursor are less vertically aligned and less dense.
  • the morphological difference between the films produced by different precursors is likely due to different pH values of the solutions.
  • the initial pH values for the zinc acetate based precursor and the zinc nitrate based precursor are, for example 6.95 and 6.82, respectively.
  • the difference in pH over 0.1 can in fact make a significant change in terms of the degree of supersaturation, which is the driving force for nucleation and growth of the ZnO nanorod. Therefore, high pH in the case of zinc acetate precursor will yield more nucleation density for ZnO rods and make them more packed and straight during the growth.
  • the effects of ionic species generated from different precursors alters the stabilization of the rod surfaces (particularly, basal plane vs non-basal planes); by inactivating non-basal planes (m-planes) through ion attachment, the aspect ratio can increase and the rod growth can be faster.

Abstract

A substrate subject to degradation at temperatures above 100° C. is coated with a nanostructured ceramic coating having a thickness in excess of 100 nm, formed on a surface of the substrate, wherein a process temperature for deposition of the nanostructured coating does not exceed 90° C. The coating may be photocatalytic, photovoltaic, or piezoelectric. The coating, when moistened and exposed to ultraviolet light or sunlight, advantageously generates free radicals, which may be biocidal, deodorizing, or assist in degradation of surface deposits on the substrate after use. The substrate may be biological or organic, and may have a metallic or conductive intermediate layer.

Description

CROSS REFERENCE TO RELATED APPLICATIONS
The present application is a non-provisional of, and claims priority under 35 U.S.C. § 119(e) to, U.S. Provisional Patent Application No. 62/010,003, filed Jun. 10, 2014, the entirety of which is expressly incorporated herein by reference.
STATEMENT OF GOVERNMENT RIGHTS
This invention was made with government support under NNX09AT30G awarded by NASA. The government has certain rights in this invention.
FIELD OF THE INVENTION
The present invention relates to the field of nano-ceramic coatings, and more particularly a process for depositing nanostructured ceramic coatings (e.g., low dimensional nanostructures such as nanoparticles, nanorods, nanoblades, etc.) on plastic substrates at low temperatures, and nano-ceramic coated plastic products and other substrates.
BACKGROUND OF THE INVENTION
Modifying material surfaces to enhance wear and corrosion resistance is a common practice for both military and commercial applications. Electrodeposited hard chrome is one of the most widely used protective coatings. Ceramic coatings, both single phase and composite types, are also common, and they are often applied using plasma spray. In this process, the coating material (usually in the form of a powder) is injected into a hot plasma stream, where it is heated and accelerated toward the substrate surface. After impacting the surface, the ceramic rapidly cools thus forming a coating layer.
Ceramic coatings have serious deficiencies that can limit their use. Plasma-sprayed ceramic coatings are somewhat less expensive than chrome (when clean-up costs are included), but are generally brittle and have limited success adhering to substrates, which is also a problem for hard chrome. The need for better coating materials has been recognized and considerable effort has recently gone into finding replacements.
Nanostructured materials are characterized by an ultra-fine microstructure with some physical aspect less than 100 nanometers in size. This feature can be grain size, particle or fiber/rod diameter, or layer thickness. There are two reasons why reducing the scale of a material's microstructure can significantly alter its properties. First, as grain size gets smaller, the proportion of atoms at grain boundaries or on surfaces increases rapidly. In a polycrystalline material with a grain size of 10 nm, as many as 50% of its atoms are at grain boundaries, resulting in a material with properties different significantly from the normal properties of the corresponding bulk (non-nanostructured) material. Second, many physical phenomena (such as dislocation generation, ferromagnetism, or quantum confinement effects) are governed by a characteristic length. As the physical scale of the material falls below this length, properties change radically.
Until recently, changes in deformation behavior and modes of failure as a result of nanostructuring of materials have not been well understood due to the inability to consistently fabricate high quality materials. This situation is changing rapidly, with considerable progress now being made in the fabrication of nanomaterials, as well as and the understanding of the interrelations between nanoscale processing, structure, and macroscale properties.
Plasma spray, one of the common processes used to fabricate ceramic coatings, is very simple in concept, but very complex in practice. An inert gas is passed through a region of electrical discharge, where it is heated to very high temperature (typically 10,000 to 20,000 K). The rapidly expanding plasma is forced out through a nozzle at velocities between 1,200 and 1,500 m/sec and directed toward a substrate. Particles are injected into the plasma, where they are heated and accelerated. Although the plasma and particle temperatures are high, and surface temperatures during the process are high, deep substrate heating is minimal. The complexity arises from the large number of parameters that must be selected and which can affect the structure and properties of the coating. The temperature and velocity of the plasma depend on the power applied to the gun, and the type and flow rate of the gas used. Usually, two gases are used, an inert gas such as helium or argon, and a secondary gas, such as hydrogen. Other factors include the morphology of the powder particles, distance from the gun to the substrate, position and orientation of the powder injection ports, and surface preparation of the substrate. Taken all together, these parameters determine the thermal history of the injected particles, velocity of impact, and flow and solidification characteristics after impact, thus dictating the resultant microstructure.
As compared to traditional plasma spray processes, plasma spraying of nanostructured materials introduces a number of complications. The first is that nanoparticles cannot be sprayed by particle injection into the plasma. Very small particles lack the momentum necessary to penetrate into the plasma, or to impact the surface while the plasma sweeps to the side near the substrate. To be sprayed, the particles must be formed into agglomerates approximately 30-100 microns in diameter. For an Al2O3—TiO2 nanocomposite, this is usually accomplished by dispersing alumina and titania nanoparticles in a fluid with a binder and spray drying [1]. If necessary, the agglomerates are partially sintered to improve structural integrity.
The next problem is forming a nanostructured coating on the substrate. This is not trivial, since the agglomerates are greatly heated (promoting rapid grain growth) and are at least partially melted. There are three mechanisms for creating or retaining a nanoscale microstructure: avoiding melting or grain growth of the feedstock (very difficult), inclusion of nanoscale particles with very high melting temperature that remain solid while the rest of the material melts, or formation of a nanostructure during solidification of the sprayed material upon impact. The last mechanism occurs in composites consisting of two or more immiscible phases (as is the case for Al2O3 and TiO2) and results from solid state decomposition of a single, metastable phase formed by rapid solidification during impact.
Therefore, while plasma spraying of nanostructured materials is known, there are significant limitations on the process, available compositions, and resulting coated product.
The obvious parameter by which to judge a “wear resistant coating” is wear rate. Wear can be termed as either sliding or abrasive. Both are measured by running a “wearing” medium over the surface and measuring weight loss. For many coatings, and particularly for brittle materials such as ceramics, this parameter can be misleading. The wear resistance of coatings in use today is outstanding, with wear rates orders of magnitude less than the uncoated surface.
Brittle coatings, however, usually do not fail by “wearing out”, but rather suffer from cracking, delamination and spallation. At least as important with respect to the usefulness of a coating on a product as wear resistance are bond strength (adhesion to the substrate) and toughness (the ability to withstand an impact or applied strain). It is in these additional properties that the nanoceramic coatings excel to a remarkable degree.
The bond strength of the nanostructured coatings (e.g., tensile pull strength), is about double that of a conventional coating, S. Sengupta and A. Kumar, “Nano-Ceramic Coatings—A Means of Enhancing Bit Life and Reducing Drill String TripsNormal access”, IPTC 2013: International Petroleum Technology Conference, Asset Integrity I (Mar. 26, 2013), earthdoc.eage.org/publication/publicationdetails/?publication=69795, expressly incorporated herein by reference. The toughness of the nanostructured Al2O3—TiO2 coatings is extraordinary. Conventional (non-nanostructured) ceramic coatings show cracking and spalling. The nanostructured coating deforms along with the substrate and no macroscopic cracking is observed. A blow from a hammer severe enough to deform a steel substrate would not be sufficient to cause failure in the coating. This toughness translates into greater wear resistance, which is two to four times greater than that of the conventional coating. L. Kabacoff, “Nanoceramic Coatings Exhibit Much Higher Toughness and wear Resistance than Conventional Coatings”, AMPTIAC Quarterly V. 6, No. 1, U.S. DoD DTIC Spring 2002, pp. 37-42, ammtiac.alionscience.com/pdf/AMPQ6_1ART05.pdf, expressly incorporated herein by reference.
SUMMARY OF THE INVENTION
Plastic products are now rapidly replacing a myriad of cookware items traditionally used by glasses and ceramics due to their durability, safety, and low manufacturing cost. Despite this trend, some people still prefer using expensive and more fragile ceramic/glass ware because the plastics can deteriorate over time after exposure to foods, which generate malodor, bad appearance, or color change.
Nano-Ceramic Coatings can be used to prevent these drawbacks while still retaining the advantages of the plastic products, as the coating only alters the surface of the plastics and not their bulk properties. The surface coating, however, adds functionality to the plastics, such as a self-cleaning property and disinfectant capabilities that result from a photocatalytic effect of certain ceramic systems. These ceramic coatings can also provide non-stick surface and higher temperature capabilities for the base plastics without using ceramic or glass materials.
Titanium oxide (TiO2) and zinc oxide (ZnO) are good candidates for a nano-ceramic coating to deposit on plastics or plastic films used in the cookware and kitchenware. Both are a wide band gap semiconductor (3.0-3.2 eV for TiO2 and 3.2-3.3 eV for ZnO), so they exhibit a photocatalytic property under UV light. This will lead to decomposition of organic compounds proximate to the coating, on exposure to sunlight or fluorescent lighting.
Water can be decomposed, using UV light, into oxygen and hydrogen, without the application of an external voltage, according to the following scheme:
TiO2 or ZnO+hv→e +h +
2h ++2H2O→2.OH→2H++H2O2
e +O2→.O2
2.O2 +4HO.+H+→2H2O2+2O2+H2
H2O2→2HO.
Ultimately, the hydroxyl radicals (.OH) are generated in both the reactions. These hydroxyl radicals are very oxidative in nature and nonselective with redox potential of (E0=+3.06 V). The hydroxyl radicals react with organic compounds to oxidize them, and often produce decomposition products. Oxidized and decomposed products tend to become more hydrophilic, and therefore can be more easily washed off by water, so the need for detergents may be reduced. See, Biplab Kumar Roy, Guangneng Zhang, and Junghyun Cho, “Titanium Oxide Nanoparticles Precipitated from Low-Temperature, Aqueous Solutions: III. Thin Film Properties”, J. Am. Ceram. Soc., 95 [2] 676-683 (2012). The hydrogen peroxide is toxic to microorganisms. A highly crystalline film with a large surface area for the reaction is important for good photocatalytic (photovoltaic) performance of these oxides.
Low-temperature processing (<100° C.) is important to generating these ceramic coatings on plastic (polymeric) substrates, and especially thermoplastics, without destroying or modifying the underlying substrate.
One way of processing nano-ceramic coatings at low temperatures (<90-100° C.) is to take advantage of in-situ precipitated nanoparticles and nanostructures grown from aqueous solution. Solution based deposition techniques (thermohydrolytic or electrochemical) can generate oxide thin films at very low temperature and low cost. Such solution deposition technique relies upon hydrolysis for converting soluble metal salts into precipitates of metal oxides, and under controlled conditions, the precipitates are nanostructured. These nanostructures can tailor ceramic film formation and the subsequent microstructure development. In addition, aqueous solution deposition provides “environment-friendly” processing without toxic or flammable solvents. Low temperature processing has also shown versatility to generate various nanostructures. The growth of low-dimensional nanostructures (0-D, 1-D, 2-D) provides a means of enhancing the crystallinity of the solution-prepared films that is of importance for photocatalytic performance.
The present technology can generate durable, fully functional, and nano-ceramic coatings (TiO2, ZnO) on plastic materials (silicone, Teflon, PET, PEN, acrylics, polyethylene, polypropylene, polycarbonate, PEEK, etc.) that possess both photocatalytic oxide properties and flexible plastic properties. Processing cost can be low, and does not require expensive equipment. Further, the process is scalable to permit implementation on a large scale. TiO2 and ZnO are generally non-toxic, and therefore may be used in food environments.
According to one embodiment, ZnO film deposition is preferred due to the strong crystalline nature of the film deposited, as compared to that of TiO2 films under similar processing conditions. The forced-hydrolytic deposition of zinc oxide from different soluble salts (e.g., zinc acetate, zinc nitrate and zinc chloride) all produced highly crystalline structure. With a seed layer mediated, low-temperature hydrothermal and electrochemical method (<90° C.), vertically aligned ZnO nanorods were grown. These highly crystalline nanorods dramatically increase surface area within the film, thereby enhancing the photovoltaic efficiency of the device.
The present technology therefore provides a low temperature process for laying down a thin layer of nanostructured ceramic onto surfaces, compatible with plastic products, such as kitchenware, including spatulas, bowls, containers, plastic flatware, serving dishes, wrapping films and even products that are used in hot environments such as in the oven or on a grill (providing the substrate, e.g., plastic, is already capable of withstanding those temperatures). The coating further typically has the property of keeping the plastic from absorbing odors or stains, and would not generally interfere with the plastic's other bulk properties, such as flexibility and light weight. It will also help keep the item's shape, which can deform over repeated use. The coating can, if desired, increase the durability of the item being coated and extend its useful life. It can also be provided to add stiffness to an item, if desired, and some ceramic feel, when held.
The type of substrate is non-critical, and in particular an aspect of the present technology permits coating of temperature-sensitive substrates with a photocatalytic ceramic layer, which may also have advantageous mechanical and chemical properties. The configuration of the substrate is also non-critical, and in particular, the process is not limited to coating of planar surfaces. The surface should be hydrophilic, which is typically achieved by having a preponderance of hydroxyl moieties on the surface. In some cases, a substrate is formed of a clean hydrophilic material, and no modification is required. In other cases, the surface may need to be cleaned, and a cleaning solution such as pirhana (H2O2/H2SO4) or base pirhana (H2O2/NH4OH) is often suitable, since this cleans and hydroxylates. In some cases, a strong acid or base is sufficient to clean an otherwise hydrophilic surface. Often, an oxygen plasma treatment after cleaning is also useful to ensure the hydrophilicity of the surface.
The substrate surface may be dense or porous. A smooth non-porous surface is useful to form traditional ceramic film coatings, though in some cases a seed layer is provided to help form a high quality film with controlled crystallinity and tailored microstructures. Such films may provide both photocatalytic properties and mechanical/chemical properties.
A porous or otherwise high surface area surface, such as wood, natural fibers, foams, woven or non-woven fabrics may also be coated or in some cases, impregnated with the nano-structured ceramic particles or nanorods. In this case, it is typically the photocatalytic properties which are predominant.
The coating process typically proceeds either with the formation of nanoparticles in solution near the surface of the substrate to be coated, with an agglomeration of particles and densification of the particles at the surface, or with the nucleation and growth of nanostructures at the surface of the substrate to be coated. This process is typically driven by a supersaturation of a solution. Three methods are available. First, immersion in a supersaturated solution leads to surface deposition. Second, a solution may be sprayed onto a surface, in either a fully controlled environment (to control, e.g., temperature, headspace gas composition and thus solution pH, etc.), or in air, with deposition occurring by precipitation of nanoparticles in the droplets, and the mechanical force of the spray. Third, an electrochemical reaction may be provided to locally increase the precipitation conditions for ceramic particles at or near the surface to be coated.
Each of these embodiments, according to the present technology, can be conducted with maximum process temperatures below 100-130° C., and in particular, can generally be conducted at 90° C. or below. In some cases, temperatures at 60° C. or below are employed. Further, some embodiments employ mild reagents that permit use of reactive or fragile substrates.
A range of natural and synthetic polymers, and blends/composites may be employed. Natural materials that may be coated include wood (and wood composite materials), paper, cardboard, bamboo, fibers such as cotton, linen, wool, silk, leather, hemp, and jute, and polymers such as rubber, gutta-percha, and shellac. Many of these materials are microporous, and inherently hydrophilic, though various treatments during manufacture may render then less hydrophilic or hydrophobic, and therefore an initial cleaning and treatment may be required to increase hydroxylation of the surface. A coating on these types of materials will tend to be integrated in the surface region, and only after the pores and crevices are filled, will a more continuous coating form. The filling of the pores and crevices will tend to alter the mechanical properties and feel of the material. In some cases, the photocatalytic coating will tend to degrade the substrate material over time; however, lignin based materials may have an ability to persist under oxidizing conditions for some time.
Synthetic fiber materials, which may be woven or non-woven, include polyester, acetate, acrylic (acrylonitrile), viscose, cellulose acetate, olefin, aramids (e.g., Kevlar), polybenzimidazole, orlon, vectran, polylactic acid, nylon, lastex (latex), rayon, spandex, viscose, polypropylene, fiberglass, carbon, polyvinyl chloride, polytetrafluoroethylene (PTFE), polyethylene (ultra high molecular weight, high molecular weight, high density, medium density, low density, ultra low density), urea-formaldehyde, and various reconstituted cellulose fibers. In general, these tend to have lower fiber porosity than natural fibers, and generally require an initial treatment to increase hydrophilicity. Note that, in some cases, the fiber may be manufactured with a hydrophilic copolymer or block copolymer that provides inherent hydrophilicity. Otherwise, a post treatment, such as piranha cleaning and oxygen plasma treatment, may be used to establish a hydrophilic surface. As with natural materials and fabrics, the synthetic fibers do not provide a flat surface or expanse for deposition of a coating, and therefore the precipitated nanoparticles or nanorods will tend to fill porosity and crevices before forming a more continuous coating outside the material.
In the case of high quality, elongated zinc oxide nanorods, the deposition on a fabric or surface with a conductive base can result in a piezoelectric generator, which produces a current based on movement. See, e.g., Azam Khan, Mazhar Ali Abbasi, Mushtaque Hussain, Zafar Hussain Ibupoto, Jonas Wissting, Omer Nur and Magnus Willander, “Piezoelectric nanogenerator based on zinc oxide nanorods grown on textile cotton fabric”; Naveed Sheikh, Nitin Afzulpurkar, and Muhammad Waseem Ashraf, “Robust Nanogenerator Based on Vertically Aligned ZnO Nanorods Using Copper Substrate”, Appl. Phys. Lett. 101, 193506 (2012); dx.doi.org/10.1063/1.4766921; Journal of Nanomaterials, Volume 2013 (2013), Article ID 861017, dx.doi.org/10.1155/2013/861017; Zhong Lin Wang and Jinhui Song, “Piezoelectric Nanogenerators Based on Zinc Oxide Nanowire Arrays”, Science v. 312 pp. 242-246 (2006), each of which is expressly incorporated herein by reference.
More generally, the substrate material may be Polyester (PES); Polyethylene terephthalate (PET); Polyethylene (PE); High-density polyethylene (HDPE); Polyvinyl chloride (PVC); Polyvinylidene chloride (PVDC); Polyvinylidene fluoride (PVDF) Low-density polyethylene (LDPE); Polypropylene (PP); Polystyrene (PS); High impact polystyrene (HIPS); Polyamides (PA) (Nylons); Acrylonitrile butadiene styrene (ABS); Polyethylene/Acrylonitrile Butadiene Styrene (PE/ABS); Polycarbonate (PC); Polycarbonate/Acrylonitrile Butadiene Styrene (PC/ABS); Polyurethanes (PU); Maleimide/Bismaleimide; Melamine formaldehyde (MF); Plastarch material; Phenolics (PF); Polyepoxide (Epoxy); Polyetheretherketone (PEEK); Polyetherimide (PEI); Polyimide; Polylactic acid (PLA); Polymethyl methacrylate (PMMA); Polytetrafluoroethylene (PTFE); Urea-formaldehyde (UF); Furan; Silicone; and Polysulfone.
According to some embodiments, the coated product is disposable (i.e., made for one time or seasonal use), and in such form may comprise a biodegradable or environmentally degradable polymer. According to one embodiment, the photocatalytic coating is capable of rapidly degrading the substrate, such that after the single or limited use, the substrate rapidly degrades under ultraviolet (UV) illumination or natural sunlight. According to other embodiments, the coated product is designed to be durable, and may be fabricated using a substrate material such as glass, ceramic, wood or metal. Typically short duration use plasticware is made from different (and less costly) materials than long term use plasticware; further, products intended to be disposable tend to be photodegradable or biodegradable, while durable products typically avoid spontaneous degradation materials. The coating may be deposited directly on the plastic substrate, or deposited on an intermediate layer, such as a metallic or conductive film. See, U.S. Pat. Nos. 8,621,755, 8,176,641, 6,983,542, 5,280,052, 5,177,124, each of which is expressly incorporated herein by reference.
The present technology provides various benefits, resulting from the new form factors enabled. For example, photocatalytic drapes, curtains or blinds permit deodorizing a room using sunlight as a source. Medical devices, such as intravenous lines, catheters, and other transcutaneous devices may be coated to provide antibacterial properties based on the ultraviolet light emitted by fluorescent bulbs in a medical environment. More generally, all surfaces in a medical environment are subject to coating, including beds, headboards, siderails, etc., bedstands, medical equipment, trays, cups, pitchers, knives, forks, spoons, bedpans, trash receptables, medical and surgical device packaging, and a full range of materials and configurations. The deposition process does not include any toxic products, and often does not unintentionally impair material properties.
Typically, the ceramic coating is a final or near-final manufacturing step, because the coating can be disrupted or cracked by various forces. As a result, in many cases, even relatively heat resistant substrates, which typically can withstand 100° C. as a bulk material, suffer deformation or degradation when in the form of a finished product.
Another product enabled by the present technology is photocatalytic water disinfection and treatment systems in third-world environments. For example, the coating may be applied to various clean, hydrophilic surfaces, and when properly applied, will produce hydroxyl radicals and hydrogen peroxide upon exposure to sunlight and moisture. Therefore, water troughs exposed to sunlight can disinfect the contents, and degrade dissolved organic compounds. The troughs can be coated in situ or near the place of use, and because the choice of materials is not narrowly constricted, a photocatalytic coating may be provided for existing installations, and in new installations, without displacing incumbent systems, suppliers, or maintenance systems. For example, a spray-applied coating driven by a steam generator to provide pressure and heat (to, e.g., 75-90° C. at the point of application) in a modestly controlled environment, using the zinc acetate technology discussed below, is used to coat plastic tubes or troughs through which contaminated water flows during daylight. (During night time or inclement weather as required to meet demand, UV light may be provided synthetically, or other source of disinfecting agent supplied).
The hydrogen peroxide and hydroxyl radical are somewhat toxic to organisms living in the water, and therefore the technology can also be exploited to reduce mosquito populations. In some areas of the globe where malaria and other insect borne diseases are endemic, standing water in old tires has been identified as a significant breeding ground for mosquitos. Therefore, if the inner wall of a tire is coated during manufacture with a photocatalytic coating, after it is removed from a vehicle, the coating should remain, and interact with sunlight to render the tire an inhospitable environment for mosquito larvae. Other configuration traps may be provided to lure female mosquitos into laying their eggs in a self-sterilizing environment.
A biocidal device is therefore provided, comprising at least one surface configured to retain natural rainwater and be exposed to sunlight, the at least one surface being coated with a nanostructured ceramic coating having a thickness in excess of 100 nm, formed by a deposition of at least one of titanium dioxide and zinc oxide nanostructures from a supersaturated aqueous ceramic precursor solution in a deposition process which does not require the at least one surface to be heated above 100° C., wherein the biocidal device produces larvicidal reaction products of rainwater when exposed to the sunlight.
Another environment for application of the technology is bathrooms. For example, toilet seats, counters, cabinets, floors, walls, tiles, sinks, faucets, hardware, etc., may be provided with a photocatalytic coating. Advantageously, when the regular light is turned off, a UV light source (gas discharge, fluorescent, LED, etc.) may be illuminated to drive the photocatalytic process. Personal articles, such as toothbrushes, combs, hair brushes, etc., can also be coated. In some cases, in the case of personal articles, a cabinet or case may be provided which provides a source of UV light when the object is not in use. Similarly, a dish washer may include an internal UV light source, to activate the photocatalytic effect for coated items contained inside. Indeed, the entire inside of the dish washer (or other enclosed space) may be coated with the photocatalytic coating, since this will generally increase the levels of hydroxyl radicals in the washwater, which in turn will facilitate cleaning of the contents.
The technology may also be used to coat portions of a car or other vehicle. The coating is provided, for example, on the exterior or interior surface(s), and the photocatalytic property is exploited to facilitate self-cleaning.
Similarly, in a clothes washer, the various surfaces, such as the drum (outer surface) and inner wall of the wash chamber provide high surface areas that may be coated with a photocatalytic material, and in use may be exposed to ultraviolet light. These surfaces are often metal or enamel coated, and not intrinsically heat sensitive; however, as the washing machine is fabricated, various heart sensitive elements are added. Therefore, while these surfaces are not plastic, they may benefit from the present technology. In use, the wash water is enriched in hydroxyl radicals as a result of the photocatalysis, resulting in reduced need for detergent and bleach, and reduced odor and possible bacterial or fungal contamination.
In other embodiments, the articles to be coated are in the kitchen or dining environment. Some of these coated plastic products according to the present technology are designed to react with organic compositions from food resulting in stains, odor absorption, or discoloration of the plasticware. Therefore, under exposure to ultraviolet light or sunlight, the organic compositions are oxidized and degraded, which can directly bleach many stains, and otherwise solubilize organic debris. In some environments, UV light is not naturally present. Therefore, according to one embodiment, a UV light source is provided within a cleaning environment, such as a dish washer, conveyor washer, plastic bus tub, dish rack, table or counter. The UV light source may be, for example, a gas discharge lamp or light emitting diode. In a kitchen, the areas that may be coated include utensils, plumbing fixtures, counters, walls, floors, tables, appliances, etc. For example, in a refrigerator or freezer, an ultraviolet lamp may illuminate photocatalytic coated surfaces, resulting in odor reduction, antibacterial effect (both direct from UV exposure, and indirect from hydrogen peroxide and hydroxyl radicals). In some cases, for example the refrigerator, a control system is provided to induce the photocatalytic effect when needed, and save energy and avoid possible side effects of UV light when not required. Assuming odor control is a goal, an odor sensor, such as a semiconductor sensor (possible in the form of a thermistor) or voltammetric sensor, is provided. Other odor sensors include MEMS/nanocatilever sensors, IS-FETs, and enzymatic sensors, and the like. In any case, the UV lamp, and in some cases, a source of moisture, are activated when odors are detected. The system can be a closed loop control system, or triggered periodically for a fixed cycle, i.e., after triggered, the process follows a predetermined course, such as 1 hour of UV and moisture, regardless of the trigger level and the measured effect of the process.
A photocatalytic water treatment system is therefore provided, comprising at least one surface configured to be wet with water and to be exposed to ultraviolet light, the surface being coated with a nanostructured ceramic coating having a thickness in excess of 100 nm, formed by a deposition of at least one of titanium dioxide and zinc oxide nanostructures from a supersaturated aqueous ceramic precursor solution in a deposition process which does not require the at least one surface to be heated above 100° C.; and an illumination system configured to illuminate the surface with ultraviolet light of sufficient intensity to treat water in the water flow path.
The surface may be an exposed wetted surface of a clothes washer isolated from contact with clothes, the illumination system further comprising a source of UV light configured to supply UV light during operation of the clothes washer to the exposed wetted surface.
The surface may also be an interior surface of a refrigerator, the illumination system further comprising a source of UV light configured to supply UV light during operation of the refrigerator to the interior surface and a source of moisture to wet the interior surface. Advantageously an odor detection sensor may be provided, along with an automated control to control at least the UV light in dependence on an output of the sensor.
With time, normal plasticware can also warp and lose its shape, for example due to residual stresses from a manufacturing process (e.g., injection molding) and the exposure to heat and UV radiation. Further, the use of plastics in microwave ovens or with hot food causes concerns for some consumers who worry about toxic chemicals leaching out of the plastic, even when the plastic is BPA-free (Bisphelol A or BPA is an additive for plastic and is also used in some plastic coatings products that has been found to cause some harm in laboratory animals, though not specifically in humans). The coating may be engineered to maintain the surface condition and configuration of the plasticware, and thus avoid or reduce deformation over time, and/or leaching of materials out of the plasticware. Further, the nanostructured ceramic coating generally does not itself contain leachable organic components, and therefore provides a barrier.
The coating also has photocatalytic properties that can reduce dirt buildup (i.e., require less soap or detergent to clean) and make the coated products easy to disinfect under UV light. Plus, having a ceramic coating over plasticware can repel potential bacterial buildup that can degrade the plastic. Finally, while the coating is ceramic, it does will not chip or break off if an item coated with it, if it is dropped.
The coating may be transparent, opaque, or tinted, and preferably includes inorganic components that do not disrupt the photocatalytic effect of UV light on the ceramic nanostructures, and avoids organic components, especially those that would degrade when subject to hydroxyl radicals from photocatalysis, and organic or inorganic components that would defeat the photocatalytic process by, for example, quenching free radicals, filtering UV light, significantly competing for UV photon capture, or provide a secondary path for release of the activation energy of the UV photons absorbed by the ceramic.
In some cases, the coating forms part of a photovoltaic cell generator or piezoelectric generator; these implementations typically compete for the energy needed to drive a photocatalytic process, and therefore within a given region of an object, there various implementations are not provided together. However, different regions of the substrate may have different functions, and a single coating may provide a basis for different end results. Therefore, while a photocatalytic product is one type of preferred embodiment, it is by no means the only useful result of depositing a nanostructured ceramic coating on a substrate.
Other products which may be produced using the technology include hair straighteners, having ceramic-coated plastic heating plates; window coatings (Yanfeng Gao; et. al. “Nanoceramic VO2 thermochromic smart glass: A review on progress in solution processing,”; Volume 1, Issue 2, March 2012, Nano Energy, www.sciencedirect.com/science/article/pii/S2211285511000255 (accessed Sep. 4, 2012), expressly incorporated herein by reference); polyvinyl siding for residential, utility, and commercial buildings; laboratory plasticware; and dishwasher inner surfaces (Carter, John David; et. al. “Rinse aid surface coating compositions for modifying dishware surfaces,” Aug. 8, 2006, U.S. Pat. No. 7,087,662, expressly incorporated herein by reference). Further products which may benefit from the nanostructured ceramic coating include screen protectors and/or oleophobic (anti smudge) lenses or surfaces for smartphones, tablets and touchscreens, smartphone cases, keyboards, automated teller machine (ATM), and other electronic device user interfaces, as well as stainless steel appliances and other exposed surfaces on which fingerprints may be evident. Dyes can be included in the coating as a finish to give appliances any tint, while enjoying the wear resistant and anti-smudge advantages of the coating.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Example 1
General procedures of precursor solution preparation and titania film deposition are discussed in G. Zhang, B. K. Roy, L. F. Allard, and J. Cho, “Titanium Oxide Nanoparticles Precipitated from Low-Temperature Aqueous Solutions: II. Thin-Film Formation and Microstructure Developments,” J. Am. Ceram. Soc., 93 [7] 1909-15 (2010), expressly incorporated herein by reference.
A preferred method for coating a plastic item is as follows. The surface of the plastic, which may have a mold release composition or other residual coating on it, is first cleaned, for example with freshly prepared piranha cleaning solution, i.e., H2O2 and sulfuric acid. A typical mixture is 3:1 concentrated sulfuric acid to 30% hydrogen peroxide solution, though a range of 2:1 to 7:1 may be used. Cleaning is conducted for 1-10 minutes at an appropriate temperature below 100° C., e.g., 60-90° C., though care is exercised to avoid significantly degrading the substrate, and the cleaning is ceased as soon as the surface is uniformly wetted and clean. The substrate is then dried in dry nitrogen gas (N2) blow, and treated with an O2 plasma (Harrick Plasma, Ithaca, N.Y.) for 15 min to render the surface hydrophilic.
A desired amount of hydrochloric acid (HCl, 36.5%-38%, J. T. Baker, Phillipsburg, N.J.) was first dissolved in ice-cold DI water (Barnsted E-pure, resistivity 18-20 MΩ-cm) followed by slow injection of adequate amount of titanium chloride (TiCl4, 99.99%, Alfa-Aesar, Ward Hill, Mass.) in a parafilm-covered glass bottle for supersaturation. The method for calculating supersaturation at the deposition temperature is addressed in G. Zhang, B. K. Roy, L. F. Allard, and J. Cho, “Titanium Oxide Nanoparticles Precipitated from Low-Temperature Aqueous Solutions: I. Nucleation, Growth, and Aggregation,” J. Am. Ceram. Soc., 91 [2] 3875-82 (2008), expressly incorporated herein by reference. Once prepared, the solutions were kept refrigerated until utilized.
The substrates may be seeded, by coating with compatible nanocrystals, such as by spin coating (e.g., for flat surfaces) or dipping in a seeding solution.
The substrates are then placed in a beaker containing freshly prepared precursor solution. The beaker was placed in an oil-bath, preset at 60-90° C., to perform the deposition. The pH of the solution is maintained by addition of a suitable acid, such as HCl for TiCl4 (pH<1.5).
The process is preferably conducted at temperatures below 90° C., both to avoid damage to the substrate, and because the low temperature maintains a slow reaction rate and higher quality smaller crystals. As temperature increases, the reaction rate increases, and larger crystals with higher crystallinity result.
The coating may be facilitated by an electrochemical process. The substrate is selected as one which is inherently conductive, or coated with a conductive surface, such as a metal. In this case, hydrogen peroxide is added to the precursor solution, for example, 10 mM hydrogen peroxide in 5 mM TiCl4 in 3:1 methanol-DI water. For example, the substrate is held at a cathodic deposition potential, with current held at a level which does not result in apparent hydrogen generation (bubbling), which might reduce coating quality. For example, the cathode voltage is held between about −3V to −5V with respect to a platinum foil reference electrode (anode) in the solution. pH and voltage may be adjusted to control both hydrogen bubble formation and corrosion of the conductive substrate. See, Biplab K. Roy, Guangneng Zhang, Roy Magnuson, Mark Poliks, and Junghyun Cho, “Electrodeposition of Titania Thin Films on Metallic Surface for High-k Dielectric Applications”, J. Am. Ceram. Soc., 93 [3] 774-781 (2010), expressly incorporated herein by reference.
The deposition is conducted to produce a coating of the desired thickness, and may be monitored by pH change (and amount of acid needed to titrate the solution to maintain pH), time and electrical current, etc., or by mechanical or functional measurements. The precursor solution is changed at every hour to increase the deposition rate and to avoid any heavy particle agglomeration.
The surface morphology and crystallinity of the resulting thin films can be controlled by changing solution parameters. A thermodynamic parameter, supersaturation (S), has been identified as a key controlling factor to tailor such variations.
After desired deposition periods, films were cleaned with ethanol and dried under mild N2 blow.
Titania particles form electrochemical conversion of TiCl4 to TiO2 in the solution, via thermal-energy-driven homogeneous nucleation. The thin film formation occurs by attraction and assembly of nanoparticles on substrate surface. Precursor solution environment not only determines the nanoparticle assembly and the film microstructure, but also influences the phase of titania (amorphous, anatase, or rutile).
Films obtained from very low S (˜63.9) solution typically have a distinct “leaf-like”-structured surface morphology, with traces of anisotropic structured growth extending from the substrate surface to the top edge of the film. Growth rates in low S precursor are higher than in high S precursor. With increasing supersaturation (i.e., S ˜232.8), bulk precipitation becomes more dominant with less contribution toward film formation and hence, the film growth rate decreases. A low S solution contains more HCl and less TiCl4. Increased HCl imparts a common ion (Cl−) effect and prevents dissociation of TiCl4, and low supersaturation can therefore be achieved. In this process, high S solution inherently has higher pH, whereas low S solution shows lower pH. Three phases of titania (namely rutile, anatase, and amorphous) are formed.
At very high supersaturation, the rate of hydrolysis is much faster than condensation. This situation can lead to random polycondensation of hydrolyzed octahedra and generation of amorphous phase. Therefore, at higher supersaturations, anatase phase surrounded primarily with amorphous titania is obtained. Amorphous phase content increases with increase in supersaturation and leads to the formation of denser and smoother film morphology. In contrast, low S conditions primarily produced directed rutile-type crystalline growth and porous films with rough topology.
Although anatase and rutile crystals can be observed in the deposited films, the presence of amorphous phase cannot be ignored in overall film morphology. Due to rapid hydrolysis characteristics of Ti4+, even in very controlled deposition conditions, polycrystalline films contain an amorphous phase along with nanocrystalline particles. Therefore, in all situations, it is important to realize the composite nature of the films with some dominating phases. From low S precursors, rutile phase appears as a dominant one. As the supersaturation increases, the anatase phase first dominates in the film structure and the amorphous phase becomes prevalent at even higher supersaturations. In low S deposited rutile-containing films, porosity and segmented structure of aligned plates limits is evident. The optical absorption spectrum of rutile films obtained from low S solution is markedly different from that of films obtained from higher supersaturations.
Highly acidic low-supersaturation solutions produce a rutile-type of crystallinity and porous morphology, whereas the higher supersaturation results in the formation of amorphous and anatase phase with a denser microstructure. UV-Vis studies reveal a distinct difference in the optical absorptions between films formed from low S and high S TiCl4 precursor solutions. The rutile-based films displayed a lower optical band gap than the films containing anatase/amorphous phases. Due to their densely packed particulate structure, the films obtained from high S showed higher mechanical properties than the porous rutile films. Dielectric properties of the rutile films were, however, superior to the anatase/amorphous films because of significant difference in dielectric constants among amorphous, anatase, and rutile phases. This offers a way of tuning thin film dielectric properties by manipulating the phase evolution with controlled solution parameters. The photoelectrochemical response is higher for the rutile-containing films, attributable to higher porosity (leading to more dye absorption, higher interaction area), higher refractive index, better crystallinity, and larger thickness of the low S generated films compared to their high S counterparts.
Example 2
Zinc oxide (ZnO) films consisting of vertically aligned nanorods may be hydrothermally grown on a seed layer at e.g., 90° C. using two alternate precursors (zinc acetate, zinc nitrate). Vertically grown nanorods exhibit the (002) out-of-plane texture and their size, alignment, density, and growth rate can be controlled by both solution and seed layer conditions. A continuous or stepwise deposition may be implemented. A seed layer, e.g., ZnAc2 may be deposited and cured at temperatures as low as 100° C. In-situ precipitated nanoparticles and nanostructures from aqueous solution are provided. See, Sunghee Lee, Biplab Kumar Roy, and Junghyun Cho, “Vertically Aligned ZnO Nanorods Grown by Low-Temperature Solution Processing”, Japanese Journal of Applied Physics 52 (2013) 05DA09, expressly incorporated herein by reference.
Zinc oxide (ZnO) is a direct wide band gap (3.4 eV) semiconductor, which is comparable to TiO2, while having several advantages over TiO2 such as easy crystallization at low temperature, 1D anisotropic growth, and high electron mobility. A hydrothermal process to produce the film employs low process temperatures, which permit use of flexible polymer substrates. Compared to other solution-based techniques which utilize open bath, the hydrothermal processing provides high controllability of nanostructures because of the mild deposition condition resulting from the higher solubility of zinc ions that, for example, titanium ions. Vertically aligned nanorods or nanotubes have shown some advantages over the nanoparticle clustered structures for enhanced photovoltaic (PV) properties due to their faster electron transport and reduced charge recombination. A seed layer may be provided to assist in in aligning the nanorod structure on the substrate.
The surface of the plastic substrate, which may have a mold release composition or other residual coating on it, is first cleaned, for example with freshly prepared piranha cleaning solution, i.e., H2O2 and sulfuric acid. A typical mixture is 3:1 concentrated sulfuric acid to 30% hydrogen peroxide solution, though a range of 2:1 to 7:1 may be used. Cleaning is conducted for 1-10 minutes at appropriate temperature, though care is exercised to avoid significantly degrading the substrate, and the cleaning is ceased after the surface is uniformly wetted and clean. The substrate is then dried in dry nitrogen gas (N2) blow, and treated with an O2 plasma (Hayrick Plasma, Ithaca, N.Y.) for 15 min to render the surface hydrophilic.
The treated substrate can be coated with a thin layer of a 1:1 molar ratio of zinc acetate dihydrate and ethanolamine in 2-methoxyethanol (all three from Alfa Aesar), in a concentration range of e.g., 50 mM-750 mM, though other concentrations may be employed as appropriate. The solutions may be pre-heated at 60° C. for 40 min in a water bath before coating, and cured at less than 90-100° C.
On the seed layer, ZnO films may be grown by hydrothermal deposition. Two types of precursors may, for example, be used: i) 20 mM zinc acetate dihydrate and 20 mM hexamethylenetetramine (HMT; Alfa Aesar); ii) 25 mM zinc nitrate hexahydrate (Alfa Aesar) and 25 mM HMT aqueous solution. Seed layer coated substrate is immersed into the precursor solution. The deposition may be conducted at 60-90° C. The deposition may be, for example, 2-8 hours, and may be repeated to build up layer thickness and density. For example, 4 2-hour sessions may be conducted with a gentle wash and solution replacement between each deposition. During the hydrothermal deposition, bulk precipitates may form, in the precursor solution, and therefore the solution may be replaced with a freshly prepared solution every 1-2 h.
A hydrothermal spray coating process is also possible, in which particles are formed in a hot supersaturated solution and sprayed with force on an object, to provide a mechanical impact effect to facilitate agglomeration of particles at the surface of the substrate. The solution can be allowed to dry after spraying. In a spray coating embodiment, it is useful to maintain the substrate at elevated temperature, e.g., 60-90° C.
After the hydrothermal deposition, the ZnO films were rinsed with deionized water, and blow dried with nitrogen gas.
Synthetic oxide films in aqueous solution are formed under an accelerated hydrolysis environment for a relatively short period. Such hydrolysis process of precursor species strongly depends solution parameters such as pH, concentration and temperature. The solubility of the oxides and their hydroxides need not be known, and the thermodynamics data may be used to calculate equilibrium solubility for the stable phases, from which the degree of supersaturation S can be calculated. It provides the driving force for nucleation and growth of the oxide nanostructures. G. Zhang, B. K. Roy, L. F. Allard, and J. Cho: J. Am. Ceram. Soc. 91 (2008) 3875.
Depending on the availability of OH— (i.e., with pH of solution) the extent of hydrolysis may vary. In the Zn—OH system, soluble species of Zn (II) ions include Zn2+, Zn(OH)+, Zn(OH)2, Zn(OH)3−, and Zn(OH)4 2−. A preliminary calculation indicated that S at pH 7 or lower is extremely small compared to that of Ti—OH, and therefore a complexing agent such as HMT (C6H12N4) or dimethylamine borane [DMAB, BH3NH(CH3)2] is provided to assist in precipitating a ZnO phase. Due to the complexing agent, Zn2+ cation also forms amine complexes such as Zn(NH3)4 2+ with NH3(aq) in moderately basic solution.
A higher degree of supersaturation S can be attained either by increasing temperature or by increasing pH of the solution, so subsequent precipitation can be accelerated.
The nanorods from a zinc acetate precursor solution tend to show straighter and more densely packed structure while those from a zinc nitrate precursor are less vertically aligned and less dense. The morphological difference between the films produced by different precursors is likely due to different pH values of the solutions. The initial pH values for the zinc acetate based precursor and the zinc nitrate based precursor are, for example 6.95 and 6.82, respectively. The difference in pH over 0.1 can in fact make a significant change in terms of the degree of supersaturation, which is the driving force for nucleation and growth of the ZnO nanorod. Therefore, high pH in the case of zinc acetate precursor will yield more nucleation density for ZnO rods and make them more packed and straight during the growth. The effects of ionic species generated from different precursors alters the stabilization of the rod surfaces (particularly, basal plane vs non-basal planes); by inactivating non-basal planes (m-planes) through ion attachment, the aspect ratio can increase and the rod growth can be faster.
Nanorod films may have a thickness range, for example, from 350 to 1700 nm, without cracks or film delamination.
Example 3
A polymeric substrate in the form of a molded, extruded, or formed useful article, subject to degradation by extended temperatures in excess of 100° C. is provided. The substrate is initially prepared to ensure a hydrophilic surface. For example, the article may be immersed or coated with piranha cleaning solution (H2O2 and sulfuric acid), for a sufficient time to fully clean the surface, but the process is limited to avoid substantial damage to the article. The substrate is then dried and may be treated with oxygen plasma to render the surface hydrophilic. In some cases, the surface may be masked, either to selectively produce hydrophilic properties, or to subsequently block the surface, to produce a latent pattern.
The substrate is, for example, formed from polyethylene terephthalate (PET), PEEK, polyurethane, nylon, epoxides, polyamides, polyaramides, polyvinyl chloride, polystyrene, ABS (acrylonitrile and styrene, toughened with polybutadiene), polyethylene, polypropylene, polycarbonate, Teflon® or other fluoropolymer, silicone, silicone heteropolymer or copolymer, etc. Rubbers and elastomers may also be treated. Films and panes, especially optically transmissive structures, may be employed as well.
The useful article is, for example, a kitchen utensil, an eating utensil (knife, fork, spoon), kitchenware (plate, bowl, cup), tray, table, headboard, cutting board, spatula, container, plastic flatware, serving dish, toothbrush, hair brush, or the like. The useful article can also be a disposable medical device, such as a catheter, intravenous line, suture, or other transcutaneous or patient-contact device, or simply an item provided in the patient room, recovery room, operating or procedure room.
The treated substrate may be pre-seeded per Example 2.
The substrate, which may be pre-seeded, is immersed in a supersaturated solution of ceramic precursor, and the supersaturated solution may be replenished after some period of deposition with an acid having the same counterions as the ceramic precursor cations, to maintain supersaturated deposition conditions. Process temperatures are maintained below a softening temperature of the molded useful article, i.e., below 100° C., and preferably below 90° C. throughout the process.
The deposition proceeds for 2-8 hours with the precursor solution replaced every 2 hours, to form a layer of ZnO nanorods e.g., 1,000 nm thick, and preferably in the range 250-3,000 nm thick.
Example 4
A low density polyethylene mixed with polyisobutene (PIB) or poly[ethylene-vinylacetate] (EVA) copolymer 40-100 gage, biaxially oriented monolayer film is provided. One surface of the film is treated with an oxygen plasma to increase hydrophilicity. The hydrophilic surface is immersed in a supersaturated ceramic precursor solution, to selectively coat the hydrophilic surface with a nanostructured ceramic coating 100-350 nm thick. The resulting product is a ceramic-coated asymmetric cling wrap, with a sticky side and a ceramic coated side. The ceramic coating reduces permability to oxygen and water, increases handleability, and provides photocatalytic properties. The process conditions are maintained below 100° C. Because of the tight radii that such a film may be subjected to, it is likely that the ceramic coating will suffer cracks if used as a traditional cling wrap. However, portions of the film that are not bent or crushed, should display a high ratio of photocatalysitc activity to weight, and may be used to provide a temporary photocatalytic surface.
Example 5
A wood product, such as a cutting board, is provided. The wood is treated to ensure hydrophilicity, such as by acid or base, short piranha treatment, enzymatic treatment, or the like, and optionally an oxygen plasma treatment.
The wood is kiln dried at 100° C. and surface of the wood is saturated with 1:1 zinc acetate: and ethanolamine in 2-methoxyethanol, and then dried at 100° C. to leave crystal seeds. The wood product is then immersed in a supersaturated solution of aqueous 20 mM zinc acetate/20 mM hexamethylenetetramine for two hours or more. The resulting product has a surface which is impregnated and coated with ZnO ceramic nanorods. It is noted that under ultraviolet illumination, with moisture, hydroxyl radicals and hydrogen peroxide are generated, which will tend to degrade the wood, but also degrade odors, food residue, and bacteria. The lignin in the wood is relatively resistant to oxidation, and therefore the reduction in product life is acceptable.
Example 6
A woven or non-woven fabric, such as a natural fiber, such as cotton, or linen, or a synthetic fiber such as polyester, nylon, rayon, PET, polyethylene, or the like is provided.
Depending on the fiber type, the substrate is treated to ensure a high degree of hydroxylation, such as by an acid treatment and/or oxygen plasma treatment. Hydrophobic substrates formed of non-porous fibers, such as ultra high molecular weight polyethylene, may be treated with piranha.
The hydrophilic substrate is saturated with 1:1 zinc acetate: and ethanolamine in 2-methoxyethanol, and then dried at 100° C. to leave crystal seeds. The seeded substrate is then immersed in a supersaturated solution of aqueous 20 mM zinc acetate/20 mM hexamethylenetetramine for two to eight hours. The resulting product has a surface which is impregnated with ZnO ceramic nanoparticles.
The fabric may, prior to coating, be formed into a useful article such as drapes or other window treatments. Under ultraviolet illumination, in the presence of moisture, hydroxyl radicals and hydrogen peroxide are generated, which will render the drapes hung in a window or as a room divider in hospital room settings as an air cleaner, to reduce odor tend to reduce bacterial growth and aerosol transfer.
Example 7
Metallized plastic silverware or a metallized plastic cell phone case is provided. See, U.S. Pat. Nos. 8,621,755, 8,176,641, 6,983,542, 5,280,052, 5,177,124. The substrate is prepared by treatment with oxygen plasma to render the surface hydrophilic.
A coating is formed by an electrochemical deposition process. The ceramic precursor solution includes 10 mM hydrogen peroxide in 5 mM TiCl4 in 3:1 methanol-DI water. The substrate is held at a cathodic deposition potential, and maintained at a pH and voltage potential to avoid corrosion of the metallized coating and also avoid hydrogen bubbling, while driving formation of a ceramic coating.
A coating is formed as a single layer or in a series of layers, for example 30 seconds applied potential, 30 seconds altered potential (preferably, a cathodic protection potential for the metalized film) for 4 cycles, to form a ceramic layer of 250-1,000 nm.
It is to be understood that while a certain form of the invention is illustrated, it is not to be limited to the specific form or arrangement herein described and shown. It will be apparent to those skilled in the art that various changes may be made without departing from the scope of the invention and the invention is not to be considered limited to what is shown and described in the specification and any drawings/figures included herein. The embodiments, methods, procedures and techniques described herein are presently representative of the preferred embodiments, are intended to be exemplary and are not intended as limitations on the scope. Changes therein and other uses will occur to those skilled in the art which are encompassed within the spirit of the invention and are defined by the scope of the appended claims.
All patents and publications mentioned in this specification are expressly incorporated herein by reference in their entirety, and may be pertinent to various issues.
REFERENCES
  • 1 J. T. Yates Jr, “Photochemistry on Tio2: Mechanisms Behind the Surface Chemistry,” Surf. Sci., 603 [10-12] 1605-12 (2009).
  • 2 Y. Xu, X. Zhu, Y. Dan, J. H. Moon, V. W. Chen, A. T. Johnson, J. W. Perry, and S. Yang, “Electrodeposition of Three-Dimensional Titania Photonic Crystals from Holographically Patterned Microporous Polymer Templates,” Chem. Mater., 20 [5] 1816-23 (2008).
  • 3 S. L. Kuai, X. F. Hu, and V.-V. Truong, “Synthesis of Thin Film Titania Photonic Crystals Through a dip-Infiltrating Sol-Gel Process,” J. Cryst. Growth, 259 [4] 404-10 (2003).
  • 4 S. Lazarouk, Z. Xie, V. Chigrinov, and H. S. Kwok, “Anodic Nanoporous Titania for Electro-Optical Devices,” Jpn. J. Appl. Phys., 46 [7A] 4390-4 (2007).
  • 5 B. H. Park, L. S. Li, B. J. Gibbons, J. Y. Huang, and Q. X. Jia, “Photovoltaic Response and Dielectric Properties of Epitaxial Anatase-TiO2 Films Grown on Conductive La0.5Sr0.5Coo3 Electrodes,” Appl. Phys. Lett., 79 [17] 2797-9 (2001).
  • 6 L. Zhou, R. C. Hoffmann, Z. Zhao, J. Bill, and F. Aldinger, “Chemical Bath Deposition of Thin TiO2-Anatase Films for Dielectric Applications,” Thin Solid Films, 516 [21] 7661-6 (2008).
  • 7 N.-G. Park, J. van de Lagemaat, and A. J. Frank, “Comparison of Dye-Sensitized Rutile- and Anatase-Based TiO2 Solar Cells,” J. Phys. Chem. B, 104 [38] 8989-94 (2000).
  • 8 M. R. Hoffmann, S. T. Matrin, W. Choi, and D. W. Bahnemann, “Environmental Applications of Semiconductor Photocatalysis,” Chem. Rev., 95 [1] 69-96 (1995).
  • 9 J. Y. Kim, D.-W. Kim, H. S. Jung, and K. S. Hong, “Influence of Anatase-Rutile Phase Transformation on Dielectric Properties of Sol-Gel Derived TiO2 Thin Films,” Jpn. J. Appl. Phys., 44 [8] 6148-51 (2005).
  • 10 B. K. Roy, G. Zhang, M. Yoo, I.-T. Bae, and J. Cho, “Developments of Low-Temperature Solution Processing for Nanostructured Titania Dielectric Films,” Sci. Adv. Mater., 2 [1] 90-101 (2010).
  • 11 W. J. E. Beek, M. W. Martijn, and R. A. J. Janssen, “Metal Oxide Polymer Bulk Heterojunction Solar Cell”; pp. 388-9 in Organic Photovoltaics, Edited by C. Brabec, V. Dyakonov, and U. Schref, Wiley-VCH, Weinheim, Germany, 2008.
  • 12 V. G. Bessergenev, I. V. Khmelinskii, R. J. F. Pereira, V. V. Krisuk, A. E. Turgambaeva, and I. K. Igumenov, “Preparation of TiO2 Films by CVD Method and its Electrical, Structural and Optical Properties,” Vacuum, 64 [3-4] 275-9 (2002).
  • 13 H. W. Lehmann and K. Frick, “Optimizing Deposition Parameters of Electron Beam Evaporated TiO(2) Films,” Appl. Opt., 27 [23] 4920-4 (1988).
  • 14 B. K. Roy, G. Zhang, R. Magnuson, M. Poliks, and J. Cho, “Electrodeposition of Titania Thin Films on Metallic Surface for High-k Dielectric Applications,” J. Am. Ceram. Soc., 93 [3] 774-81 (2010).
  • 15 C. D. Lokhande, S.-K. Min, K.-D. Jung, and O.-S. Joo, “Cathodic Electrodeposition of Amorphous Titanium Oxide Films from an Alkaline Solution Bath,” J. Mater. Sci., 39 [21] 6607-10 (2004).
  • 16 B. K. Roy, Electrodepsoition of Titania and Barum Titanate Thin Films for High-k Dielectric Applications, Ph.D. Dissertation, State University of New York, Binghamton, N.Y., 2010.
  • 17 G. Zhang, B. K. Roy, L. F. Allard, and J. Cho, “Titanium Oxide Nanoparticles Precipitated from Low-Temperature Aqueous Solutions: I. Nucleation, Growth, and Aggregation,” J. Am. Ceram. Soc., 91 [2] 3875-82 (2008).
  • 18 G. Zhang, B. K. Roy, L. F. Allard, and J. Cho, “Titanium Oxide Nanoparticles Precipitated from Low-Temperature Aquous Solutions: II. Thin-Film Formation and Microstructure Developments,” J. Am. Ceram. Soc., 93 [7] 1909-15 (2010).
  • 19 M. Henry, J. P. Jolivet, and J. Livage, “Aqueous Chemistry of Metal Cations: Hydrolysis, Condensation and Complexation”; pp. 153-206 in Structure and Bonding, Vol. 77, Edited by R. Reisfeld and C. K. Jorgensen, Springer-Verlag, Berlin, Germany, 1992.
  • 20 F. P. Rotzinger and M. Graetzel, “Characterization of the Perhydroxytitanyl(2+) Ion in Acidic Aqueous Solution. Products and Kinetics of its Decomposition,” Inorg. Chem., 26 [22] 3704-8 (1987).
  • 21 M. Birkholz, P. F. Fewster, and C. Genzel, Thin Film Analysis by X-ray Scattering. pp. 148-55, Wiley-VCH, Weinhiem, Germany, 2006.
  • 22 J. I. Pankove, Optical Processes in Semiconductors. pp. 35-42, Dover, N.Y., 1975.
  • 23 S. D. Mo and W. Y. Ching, “Electronic and Optical Properties of Three Phases of Titanium Dioxide: Rutile, Anatase, and Brookite,” Phys. Rev. B, 51 [19] 13023-32 (1995).
  • 24 D. Reyes-Coronado, G. Rodrguez-Gattorno, M. E. Espinosa-Pesqueira, C. Cab, R, de Coss, and G. Oskam, “Phase-Pure TiO2 Nanoparticles: Anatase, Brookite and Rutile,” Nanotechnology, 19 [14] 145605, 10 pp (2008).
  • 25 C. Yang, H. Fan, Y. Xi, J. Chen, and Z. Li, “Effects of Depositing Temperatures on Structure and Optical Properties of TiO2 Film Deposited by Ion Beam Assisted Electron Beam Evaporation,” Appl. Surf. Sci., 254 [9] 2685-9 (2008).
  • 26 A. Nakaruk, D. Ragazzon, and C. C. Sorrell, “Anatase-Rutile Transformation Through High-Temperature Annealing of Titania Films Produced by Ultrasonic Spray Pyrolysis,” Thin Solid Films, 518 [14] 3735-42 (2010).
  • 27 S. H. Kang, M.-S. Kang, H.-S. Kim, J.-Y. Kim, Y.-H. Chung, W. H. Smyrl, and Y.-E. Sung, “Columnar Rutile TiO2 Based Dye-Sensitized Solar Cells by Radio-Frequency Magnetron Sputtering,” J. Power Sources, 184 [1] 331-5 (2008).
  • 28 S. Burnside, J.-E. Moser, K. Brooks, and M. Graetzel, “Nanocrystalline Mesoporous Strontium Titanate as Photoelectrode Material for Photosensitized Solar Devices: Increasing Photovoltage Through Flatband Potential Engineering,” J. Phys. Chem. B, 103 [43] 9328-33 (1999).
  • 29 J. M. Bolts and M. S. Wrighton, “Correlation of Photocurrent-Voltage Curves with Flat-Band Potential for Stable Photoelectrodes for the Photoelectrolysis of Water,” J. Phys. Chem., 80 [24] 2641-5 (1976).
  • 30 R. Saha and W. D. Nix, “Effects of the Substrate on the Determination of Thin Film Mechanical Properties by Nanoindentation.,” Acta Mater., 50 [1] 23-38 (2002).
  • 31 W. C. Oliver and G. M. Pharr, “Improved Technique for Determining Hardness and Elastic Modulus Using Load and Displacement Sensing Indentation Experiments,” J. Mater. Res., 7 [6] 1564-83 (1992).
  • 32 R. B. King, “Elastic Analysis of Some Punch Problems for a Layered Medium,” Int. J. Solids Structures, 23 [12] 1657-64 (1987).
  • 33 M. J. Mayo, R. W. Sieigel, A. Narayanasamy, and W. D. Nix, “Mechanical Properties of Nanophase TiO2 as Determined by Nanoindentation,” J. Mater. Res., 5 [5] 1073-82 (1990).
  • 34 O. Zywitzki, T. Modes, H. Sahm, P. Frach, K. Goedicke, and D. Glo” β, “Structure and Properties of Crystalline Titanium Oxide Layers Deposited by Reactive Pulse Magnetron Sputtering,” Surf. Coat. Technol., 180-181 [1] 538-43 (2004).
  • 35 P. Kern, P. Schwaller, and J. Michler, “Electrolytic Deposition of Titania Films as Interference Coatings on Biomedical Implants: Microstructure, Chemistry and Nano-Mechanical Properties,” Thin Solid Films, 494 [1-2] 279-86 (2006).
  • 36 Z. Burghard, L. P. Bauermann, A. Tucic, L. P. Jeurgens, V. Srot, P. Bellina, P. Lipowsky, R. C. Hoffmann, E. Gutmanas, J. Bill, and F. Aldinger, “Nacre-Like TiO2- and ZnO-Based Organic/Inorganic Hybrid Systems in 1007-S07-03,” Mater. Res. Soc. Symp. Proc., 1007-S07-03 115-22 (2007).
  • 37 Y. Gaillard, V. J. Rico, E. Jimenez-Pique, and A. R. Gonz'alez-Elipe, “Nanoindentation of TiO2 Thin Films with Different Microstructures,” J. Phys. D: Appl. Phys., 42 [14] 145305, 9 pp (2009).
  • 38 M. Agarwal, M. R. De Guire, and A. Heuer: J. Am. Ceram. Soc. 80 (1997) 2967.
  • 39 B. C. Bunker, P. C. Rieke, B. J. Tarasevich, A. A. Campbell, G. E. Fryxell, G. L. Graff, L. Song, J. Liu, J. W. Virden, and G. L. McVay: Science 264 (1994) 48.
  • 40 H. Cölfen and M. Antonietti: Angew. Chem. Int. Ed. 44 (2005) 5576.
  • 41 G. Zhang, J. Y. Howe, D. W. Coffey, D. A. Blom, L. F. Allard, and J. Cho: Mater. Sci. Eng. C 26 (2006) 1344.
  • 42 B. K. Roy, G. Zhang, and J. Cho: J. Am. Ceram. Soc. 95 (2012) 676.
  • 43 B. K. Roy, G. Zhang, R. Magnuson, M. Poliks, and J. Cho: J. Am. Ceram. Soc. 93 (2010) 774.
  • 44 B. K. Roy and J. Cho: J. Am. Chem. Soc. 95 (2012) 1189.
  • 45 S. Yu, J. S. Lee, S. Nozaki, and J. Cho: Thin Solid Films 520 (2012) 1718.
  • 46 M. Grätzel: J. Photochem. Photobiol. C 4 (2003) 145.
  • 47 B. E. Sernelius, K.-F. Berggren, Z.-C. Jin, I. Hamberg, and C. G. Granqvist: Phys. Rev. B 37 (1988) 10244.
  • 48 E. M. Kaidashev, M. Lorenz, H. von Wenckstern, A. Rahm, H.-C. Semmelhack, K.-H. Han, G. Benndorf, C. Bundesmann, H. Hochmuth, and M. Grundmann: Appl. Phys. Lett. 82 (2003) 3901.
  • 49 R. Könenkamp, L. Dloczik, K. Ernst, and C. Olesch: Physica E 14 (2002) 219.
  • 50 J. Wu and S. Liu: Adv. Mater. 14 (2002) 215.
  • 51 A. Martinson, M. Goes, F. Fabregat-Santiago, J. Bisquert, M. Pellin, and J. Hupp: J. Phys. Chem. A 113 (2009) 4015.
  • 52 L. Schmidt-Mende and J. MacManus-Driscoll: Mater. Today 10 [5] (2007) 40.
  • 53 M. H. Huang, Y. Wu, H. Feick, N. Tran, E. Weber, and P. Yang: Adv. Mater. 13 (2001) 113.
  • 54 J. H. Choi, H. Tabata, and T. Kawai: J. Cryst. Growth 226 (2001) 493.
  • 55 J. X. Wang, C. M. L. Wu, W. S. Cheung, L. B. Luo, Z. B. He, G. D. Yuan, W. J. Zhang, C. S. Lee, and S. T. Lee: J. Phys. Chem. C 114 (2010) 13157.
  • 56 X. Wang, Z. Tian, T. Yu, H. Tian, J. Zhang, S. Yuan, X. Zhang, Z. Li, and Z. Zou: Nanotechnology 21 (2010) 065703.
  • 57 C.-H. Ku and J.-J. Wu: Nanotechnology 18 (2007) 505706.
  • 58 K. Zhu, N. R. Neale, A. Miedaner, and A. J. Frank: Nano Lett. 7 (2007) 69.
  • 59 S. Yamabi and H. Imai: J. Mater. Chem. 12 (2002) 3773.
  • 60 L. E. Greene, M. Law, D. H. Tan, M. Montano, J. Goldberger, G. Somorjai, and P. Yang: Nano Lett. 5 (2005) 1231.
  • 61 K. Govender, D. S. Boyle, P. B. Kenway, and P. O'Brien: J. Mater. Chem. 14 (2004) 2575.
  • 62 C. Gumu, O. M. Ozkendir, H. Kayak, and Y. Ufuktepe: J. Optoelectron. Adv. Mater. 8 (2006) 299.
  • 63 M. Suchea, S. Christoulakis, K. Moschovis, N. Katsarakis, and G. Kiriakidis: Thin Solid Films 515 (2006) 551.
  • 64 M. R. Islam and J. Podder: Cryst. Res. Technol. 44 (2009) 286.
  • 65 C. Y. Jiang, X. W. Sun, G. Q. Lo, D. L. Kwong, and J. X. Wang: Appl. Phys. Lett. 90 (2007) 263501.
  • 66 A. D. Pasquier, H. Chen, and Y. Lu: Appl. Phys. Lett. 89 (2006) 253513.
  • 67 J. Qiu, X. Li, W. He, S.-J. Park, H.-K. Kim, Y.-H. Hwang, J.-H. Lee, and Y.-D. Kim: Nanotechnology 20 (2009) 155603.
  • 68 L. T. Kabakoff, “Nanoceramic Coatings Exhibit Much Higher Toughness and Wear Resistance Than Conventional Coatings”; AMPTIAC Quarterly Newsletter Spring 2002, vol. 6 No. 1.
  • 69 Hoda S. Hafez, E. El-fadaly; “Synthesis, characterization and color performance of novel Co2+-doped alumina/titania nanoceramic pigments,” Volume 95, September 2012, Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, Sciencedirect web site, www.sciencedirect.com/science/article/pii/S1386142512004246 (accessed Aug. 4, 2012).
  • 70 Su-Shia Lin; “Effect of substrate temperature on the properties of TiO2 nanoceramic films,” Volume 38, Issue 3, April 2012, Ceramics International, Sciencedirect web site, www.sciencedirect.com/science/article/pii/S0272884211009722 (accessed Sep. 4, 2012).
  • 71 Su-Shia Lin, et. al. “TiO2 nanoceramic films prepared by ion beam assisted evaporation for optical application,” Volume 35, Issue 4, Ceramics International, Sciencedirect web site, www.sciencedirect.com/science/article/pii/S0272884208003015 (accessed September, 2012).
  • 72 Yanfeng Gao; et. al. “Nanoceramic VO2 thermochromic smart glass: A review on progress in solution processing,”; Volume 1, Issue 2, March 2012, Nano Energy, www.sciencedirect.com/science/article/pii/S2211285511000255 (accessed Sep. 4, 2012).
  • 73 Carter, John David; et. al. “Rinse aid surface coating compositions for modifying dishware surfaces,” Aug. 8, 2006, U.S. Pat. No. 7,087,662.
See also, U.S. Pat. Nos. 8,557,215, 8,492,319, 8,490,950, 8,476,206, 8,227,548, 8,227,072, 8,021,768, WO2011/061691, EP1835002, CN101190851, U.S. Pat. Nos. 6,350,397; 6,537,517; 6,764,796; 6,846,565; 6,918,946; 7,019,391; 7,071,139; 7,186,392; 7,229,600; 7,232,556; 7,285,188; 7,312,087; 7,330,369; 7,335,908; 7,354,850; 7,375,417; 7,393,699; 7,432,522; 7,476,607; 7,482,382; 7,489,537; 7,491,431; 7,498,005; 7,521,394; 7,524,370; 7,528,002; 7,541,509; 7,572,400; 7,575,784; 7,601,326; 7,601,327; 7,608,147; 7,630,227; 7,645,397; 7,655,274; 7,670,581; 7,677,198; 7,682,943; 7,687,431; 7,695,689; 7,713,955; 7,722,953; 7,745,813; 7,763,149; 7,826,336; 7,846,864; 7,864,560; 7,883,610; 7,901,660; 7,910,492; 7,911,035; 7,927,567; 7,931,683; 7,938,855; 7,942,926; 7,960,260; 7,973,997; 7,976,915; 7,977,402; 7,981,150; 7,988,947; 7,994,422; 8,002,823; 8,003,563; 8,029,554; 8,048,523; 8,049,203; 8,066,763; 8,067,054; 8,067,299; 8,067,402; 8,067,403; 8,070,797; 8,071,156; 8,076,846; 8,084,762; 8,089,681; 8,120,009; 8,163,084; 8,163,633; 8,178,122; 8,183,587; 8,187,620; 8,216,632; 8,221,655; 8,221,822; 8,227,817; 8,231,980; 8,242,481; 8,247,680; 8,268,381; 8,269,214; 8,277,631; 8,283,412; 8,287,937; 8,318,126; 8,318,297; 8,320,514; 8,323,982; 8,344,238; 8,353,949; 8,357,954; 8,376,013; 8,377,414; 8,389,958; 8,403,239; 8,415,556; 8,425,803; 8,426,817; 8,431,149; 8,432,604; 8,440,162; 8,449,603; 8,450,716; 8,450,717; 8,455,857; 8,541,337; 8,574,419; 8,574,615; 8,585,627; 8,592,037; 8,598,266; 8,609,205; 8,618,212; 8,618,509; 8,618,595; 8,624,105; 8,628,726; 8,629,076; 8,632,663; 8,647,292; 8,647,915; 8,652,409; 8,652,874; 8,653,497; 8,663,380; 8,664,143; 8,669,325; 8,679,580; 8,681,925; 8,702,640; 8,706,211; 8,731,132; 8,734,718; 8,748,111; 8,753,304; 8,771,343; 8,772,626; 8,779,277; 8,790,462; 8,790,614; 8,796,119; 8,796,417; 8,796,544; 8,815,273; 8,815,275; 8,840,863; 8,847,476; 8,864,341; 8,865,113; 8,871,670; 8,871,926; 8,878,157; 8,883,115; 8,884,507; 8,888,731; 8,900,292; 8,916,064; 8,920,491; 8,921,473; 8,927,615; 8,932,346; 8,936,734; 8,975,205; 8,993,089; 8,994,270; 9,004,131; 9,005,480; 9,018,122; 9,023,308; 9,040,145; 20030003300; 20030034486; 20040144726; 20040156986; 20040224147; 20050008861; 20050031876; 20050126338; 20050191492; 20050218397; 20050218398; 20050230822; 20050231855; 20050260269; 20050265935; 20050266697; 20050267345; 20060102468; 20060118493; 20060133975; 20060145326; 20060182997; 20060210798; 20060240386; 20060243321; 20060260674; 20070000407; 20070039814; 20070084507; 20070087187; 20070095389; 20070104629; 20070128707; 20070157967; 20070181508; 20070202334; 20070202342; 20070218049; 20070285843; 20080020127; 20080021212; 20080026041; 20080031806; 20080057420; 20080090930; 20080138267; 20080187684; 20080187724; 20080207581; 20080220535; 20080239791; 20080249600; 20080283411; 20080305045; 20080318044; 20090005880; 20090017303; 20090074649; 20090104369; 20090116277; 20090126604; 20090188407; 20090220600; 20090220698; 20090270997; 20090286936; 20090294692; 20090311513; 20100000874; 20100003204; 20100069229; 20100073995; 20100190639; 20100258446; 20100261263; 20100278720; 20100304204; 20100307593; 20100308286; 20100326699; 20110012096; 20110015300; 20110051220; 20110053285; 20110101862; 20110110141; 20110123409; 20110149400; 20110171789; 20110200761; 20110208021; 20110208023; 20110208026; 20110214996; 20110220855; 20110226738; 20110238001; 20110245074; 20110245576; 20110262312; 20110275912; 20110295088; 20110295089; 20110295090; 20110297846; 20120010314; 20120010481; 20120040581; 20120041285; 20120041286; 20120041287; 20120066926; 20120077006; 20120091429; 20120091482; 20120122652; 20120122668; 20120152336; 20120152337; 20120164561; 20120172648; 20120181163; 20120209090; 20120235094; 20120265122; 20120281428; 20120299175; 20120329657; 20130001067; 20130004778; 20130015076; 20130032470; 20130059396; 20130079577; 20130099196; 20130102458; 20130150809; 20130156905; 20130163310; 20130171060; 20130180862; 20130184144; 20130189607; 20130212789; 20130216774; 20130240758; 20130250403; 20130252798; 20140011013; 20140056947; 20140069819; 20140093744; 20140106471; 20140119026; 20140126269; 20140134092; 20140147398; 20140160723; 20140163303; 20140174905; 20140174906; 20140213427; 20140217330; 20140220091; 20140222117; 20140223997; 20140225498; 20140227211; 20140242389; 20140243934; 20140252275; 20140256534; 20140262743; 20140262806; 20140272030; 20140272623; 20140287237; 20140294721; 20140295102; 20140301904; 20140301905; 20140311221; 20140323946; 20140326311; 20140336039; 20140339072; 20140342254; 20140356574; 20150036234; 20150122639; 20150125829; each of which is expressly incorporated herein by reference.

Claims (22)

What is claimed is:
1. A formed polymeric object, comprising:
an organic polymeric substrate; and
a nanostructured ceramic coating on a surface of the organic polymeric substrate, comprising a composite of precipitated nanocrystalline ceramic particles within an amorphous ceramic phase, the nanostructured ceramic coating having a thickness in excess of 100 nm,
the amorphous phase and the nanocrystalline particles each comprising at least one of titanium dioxide and zinc oxide, formed by nucleated growth from a supersaturated aqueous solution of at least one ceramic precursor metal salt on surface of the organic polymeric substrate, wherein a process temperature for deposition of the nanostructured ceramic coating does not exceed 100° C.
2. The formed polymeric object according to claim 1, wherein the nanostructured ceramic coating comprises a titanium oxide amorphous phase and titanium oxide precipitated nanocrystalline particles.
3. The formed polymeric object according to claim 1, wherein the nanostructured ceramic coating comprises a zinc oxide amorphous phase and zinc oxide precipitated nanocrystalline particles.
4. The formed polymeric object according to claim 1, wherein the nanostructured ceramic coating is a photocatalytic coating.
5. The formed polymeric object according to claim 1, wherein the nanostructured ceramic coating is at least one of a photovoltaic coating and a piezoelectric coating, wherein the surface of the organic polymeric substrate is metallized, and the nanostructured ceramic coating is formed electrochemically.
6. The formed polymeric object according to claim 1, wherein the substrate comprises a material selected from the group consisting of: wood, wood composite materials, paper, cardboard, bamboo, cotton, linen, hemp, and jute.
7. The formed polymeric object according to claim 1, wherein the substrate comprises collagen.
8. The formed polymeric object according to claim 1, wherein the substrate comprises at least one material selected from the group consisting of: silk, polyester, acetate, acrylic, acrylonitrile, polyurethane, viscose, cellulose acetate, olefin, Kevlar, polybenzimidazole, orlon, vectran, polylactic acid, nylon, latex, rayon, spandex, viscose, polypropylene, fiberglass, carbon, polyvinyl chloride, polytetrafluoroethylene, ultra high molecular weight polyethylene, high molecular weight polyethylene, high density polyethylene, medium density polyethylene, low density polyethylene, ultra low density polyethylene, urea-formaldehyde, reconstituted cellulose fiber, Polyethylene terephthalate (PET); Polyvinyl chloride (PVC); Polyvinylidene chloride; Polyvinylidene fluoride Polypropylene; Polystyrene; High impact polystyrene; Polyamides, nylon; Acrylonitrile butadiene styrene; Polyethylene/Acrylonitrile Butadiene Styrene; Polycarbonate; Polycarbonate/Acrylonitrile Butadiene Styrene; Polyurethane; Maleimide/Bismaleimide; Melamine formaldehyde; Plastarch material; Phenolic; Polyepoxide; Polyetheretherketone; Polyetherimide; Polyimide; Polylactic acid; Polymethyl methacrylate; Urea-formaldehyde; Furan; Silicone; Epoxide, Polyaramide, Polysulfone, neoprene and butadiene rubber.
9. The formed polymeric object according to claim 1, wherein the organic polymeric substrate is subject to degradation by a photocatalytic process of the nanostructured ceramic coating interacting with ultraviolet light and water.
10. The formed polymeric object according to claim 1, wherein the organic polymeric substrate has a configuration of at least one of silverware, a serving utensil, a plate, a bowl, a cup, a tray, a cutting board, a toothbrush, a hair brush, and a comb.
11. The formed polymeric object according to claim 1, wherein the organic polymeric substrate comprises at least one of photocatalytic drapes, curtains or blinds.
12. The formed polymeric object according to claim 1, wherein the organic polymeric substrate has a configuration of at least one of medical catheter, an intravenous line, a transcutaneous medical device, a surgical device, and a medical scope.
13. The formed polymeric object according to claim 1, wherein the surface of the organic polymeric substrate is metalized between the organic polymeric substrate and the nanostructured ceramic coating.
14. The formed polymeric object according to claim 13, wherein the nanostructured ceramic coating is deposited electrochemically.
15. The formed polymeric object according to claim 1, wherein the nanostructured ceramic coating is deposited in a hydrothermal deposition process.
16. The formed polymeric object according to claim 1,
further comprising an illumination system configured to provide light comprising ultraviolet rays;
wherein the nanostructured ceramic coating is a photocatalytic coating, and has at least one surface configured as a water flow path exposed to the ultraviolet rays from the illumination system, to thereby subject water in the water flow path to photocatalytically-generated free radicals from water due to exposure of the photocatalytic coating with the ultraviolet rays along the water flow path.
17. The formed polymeric object according to claim 16, wherein the at least one surface comprises an exposed wetted surface of a clothes washer isolated from contact with clothes, the illumination system being further comprising a source of ultraviolet light configured to supply the ultraviolet rays during operation of the clothes washer to the exposed wetted at least one surface.
18. The formed polymeric object according to claim 16, wherein the at least one surface comprises an interior surface of a refrigerator, the illumination system further comprising:
a source of ultraviolet light configured to supply the ultraviolet rays to the interior surface during operation of the refrigerator; and
a source of moisture to wet the interior surface.
19. The formed polymeric object according to claim 18, further comprising an odor detection sensor, and an automated control configured to selectively supply the at least the ultraviolet rays in dependence on an output of the odor detection sensor.
20. The formed polymeric object according to claim 1, wherein the organic polymeric substrate is configured as at least one exposed surface within a refrigerator, and the refrigerator comprises an ultraviolet light source which illuminates the nanostructured ceramic coating with the ultraviolet rays on the exposed at least one surface.
21. A formed polymeric object, comprising:
a polymeric substrate having a hydrophilic surface; and
a nanostructured ceramic coating comprising a composite of a metal oxide ceramic amorphous phase with metal oxide ceramic nanocrystalline particles comprising nanorods or nanotubes in the metal oxide ceramic amorphous phase, the nanostructured ceramic coating having a thickness in excess of 100 nm, formed by precipitation from a supersaturated aqueous solution of at least one metal oxide ceramic precursor metal salt on the hydrophilic surface of the polymeric substrate at a process temperature which does not exceed 100° C.
22. A polymeric object having a preformed surface on which a nanostructured titanium dioxide or zinc oxide coating comprising a composite ceramic with an amorphous ceramic phase with nanocrystalline ceramic particles in the amorphous ceramic phase, the nanostructured titanium dioxide or zinc oxide coating having a thickness in excess of 100 nm is electrochemically or hydrothermally precipitated from a supersaturated solution of at least one titanium salt or zinc salt precursor in a process having temperatures that do not exceed 100° C.
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Families Citing this family (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9805928B2 (en) 2015-03-12 2017-10-31 The Curators Of The University Of Missouri Low temperature nanowire growth on arbitrary substrates
SG10202101000VA (en) * 2016-09-20 2021-03-30 Agency Science Tech & Res Cell rupture-based antimicrobial surfaces coated with metal oxide nano-arrays
GB2561228B (en) * 2017-04-06 2019-07-31 Gkn Aerospace Services Ltd Heater element and method of manufacture thereof
CN108970601B (en) * 2018-07-09 2021-08-03 中国科学院宁波材料技术与工程研究所 Photocatalytic coating with zinc oxide/titanium dioxide heterostructure and preparation method and application thereof
CN110062080B (en) * 2019-05-08 2024-04-02 衡山县佳诚新材料有限公司 PC board mobile phone rear cover and production process thereof
CN110128739B (en) * 2019-05-21 2021-04-27 福州大学 EVA (ethylene-vinyl acetate) foam material with surface loaded with modified titanium dioxide photocatalyst and preparation method thereof
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CN112876721B (en) * 2021-01-14 2022-05-17 四川大学 High-performance 3D printing piezoelectric part and preparation method thereof
CN114603872A (en) * 2022-03-10 2022-06-10 郑员锋 Wear-resistant antibacterial degradable plastic and preparation method of film

Citations (236)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5284570A (en) * 1991-06-26 1994-02-08 Ppg Industries, Inc. Fluid sample analyte collector and calibration assembly
US6350397B1 (en) 1999-03-10 2002-02-26 Aspen Research Corporation Optical member with layer having a coating geometry and composition that enhance cleaning properties
US20030003300A1 (en) 2001-07-02 2003-01-02 Korgel Brian A. Light-emitting nanoparticles and method of making same
US20030034486A1 (en) 2001-07-02 2003-02-20 Korgel Brian A. Applications of light-emitting nanoparticles
US6537517B1 (en) 1996-09-30 2003-03-25 Chuba Electric Power Co., Ltd. Crystalline titania having nanotube crystal shape and process for producing the same
US6764796B2 (en) 2001-06-27 2004-07-20 University Of South Florida Maskless photolithography using plasma displays
US20040144726A1 (en) 1998-12-09 2004-07-29 Chmelka Bradley F. Block polymer processing for mesostructured inorganic oxide materials
US20040156986A1 (en) 2003-02-10 2004-08-12 Nanoproducts Corporation Color pigments nanotechnology
US20040224147A1 (en) 2002-12-06 2004-11-11 Chou Kuo Chung Screen and manufacturing method thereof
US20050008861A1 (en) 2003-07-08 2005-01-13 Nanoproducts Corporation Silver comprising nanoparticles and related nanotechnology
US20050031876A1 (en) 2003-07-18 2005-02-10 Songwei Lu Nanostructured coatings and related methods
US20050126338A1 (en) 2003-02-24 2005-06-16 Nanoproducts Corporation Zinc comprising nanoparticles and related nanotechnology
US20050191492A1 (en) 2003-09-26 2005-09-01 Nanoproducts Corporation Titanium comprising nanoparticles and related nanotechnology
US20050218397A1 (en) 2004-04-06 2005-10-06 Availableip.Com NANO-electronics for programmable array IC
US20050218398A1 (en) 2004-04-06 2005-10-06 Availableip.Com NANO-electronics
US20050230822A1 (en) 2004-04-06 2005-10-20 Availableip.Com NANO IC packaging
US20050231855A1 (en) 2004-04-06 2005-10-20 Availableip.Com NANO-electronic memory array
US20050260269A1 (en) 2004-05-18 2005-11-24 Jurgen Engelbrecht Composition containing nano-crystalline apatite
US20050265935A1 (en) 2004-05-28 2005-12-01 Hollingsworth Jennifer A Semiconductor nanocrystal quantum dots and metallic nanocrystals as UV blockers and colorants for suncreens and/or sunless tanning compositions
US20050267345A1 (en) 2001-07-02 2005-12-01 The University Of Texas System, Board Of Regents Applications of light-emitting nanoparticles
US20060102468A1 (en) 2002-08-21 2006-05-18 Battelle Memorial Institute Photolytic oxygenator with carbon dioxide and/or hydrogen separation and fixation
US20060133975A1 (en) 2004-12-20 2006-06-22 Sharp Kabushiki Kaisha Adsorbent, porous filter, air cleaning device, method of cleaning air, and method of manufacturing porous filter
US7071139B2 (en) 2001-12-21 2006-07-04 Georgia Tech Research Corporation Oxynitride compounds, methods of preparation, and uses thereof
US20060182997A1 (en) 2003-03-17 2006-08-17 Takao Yamamoto Noble metal-magnetic metal oxide composite particle and method for producing same
US20060210798A1 (en) 2005-03-16 2006-09-21 Clemens Burda Doped metal oxide nanoparticles and methods for making and using same
US20060240386A1 (en) 2005-04-18 2006-10-26 Nano-Proprietary, Inc. Method and apparatus for oral care
US20060243321A1 (en) 2003-12-08 2006-11-02 Matsushita Electric Industrial Co., Ltd. Semiconductor electrode, production process thereof and photovoltaic cell using semiconductor electrode
US20070000407A1 (en) 2003-10-09 2007-01-04 York International Corporation Nano composite photocatalytic coating
US20070039814A1 (en) 2005-08-19 2007-02-22 Maggard Paul A Solar photocatalysis using transition-metal oxides combining d0 and d6 electron configurations
US20070087187A1 (en) 2003-07-18 2007-04-19 Ppg Industries Ohio, Inc. Nanostructured coatings and related methods
US20070084507A1 (en) 2005-10-19 2007-04-19 Noh Chang H Dye-sensitized photovoltaic cell and method for producing electrode substrate for the photovoltaic cell
US20070095389A1 (en) 2005-11-01 2007-05-03 Cho Sung H Transparent electrode for solar cells, manufacturing method thereof, and semiconductor electrode comprising the same
US20070104629A1 (en) 2003-01-31 2007-05-10 Nanoproducts Corporation Nanoparticles of rare earth oxides
US20070128707A1 (en) 2005-11-10 2007-06-07 Oregon State University Method for making metal oxides
US20070157967A1 (en) 2005-12-14 2007-07-12 Massachusetts Institute Of Technology Bio-sensitized solar cells (BSSC)
US20070181508A1 (en) 2006-02-09 2007-08-09 Gui John Y Photocatalytic fluid purification systems and methods for purifying a fluid
US20070202342A1 (en) 2005-12-12 2007-08-30 Whiteford Jeffery A Methods and systems for coating an oral surface
US20070202334A1 (en) 2005-12-29 2007-08-30 Rong-Cai Xie Nanoparticles containing titanium oxide
US20070218049A1 (en) 2006-02-02 2007-09-20 Wei Chen Nanoparticle based photodynamic therapy and methods of making and using same
US7285188B2 (en) 2001-12-21 2007-10-23 Georgia Tech Research Corporation Oxynitride compounds, methods of preparation, and uses thereof
US20070285843A1 (en) 2006-06-12 2007-12-13 Tran Bao Q NANO-electronics
US7312087B2 (en) 2000-01-11 2007-12-25 Clinical Micro Sensors, Inc. Devices and methods for biochip multiplexing
US20080026041A1 (en) 2005-09-12 2008-01-31 Argonide Corporation Non-woven media incorporating ultrafine or nanosize powders
US20080031806A1 (en) 2005-09-16 2008-02-07 John Gavenonis Continuous process for making nanocrystalline metal dioxide
US7335908B2 (en) 2002-07-08 2008-02-26 Qunano Ab Nanostructures and methods for manufacturing the same
US20080057420A1 (en) 2006-08-31 2008-03-06 Kabushiki Kaisha Toyota Chuo Kenkyusho Light energy conversion material
US7354850B2 (en) 2004-02-06 2008-04-08 Qunano Ab Directionally controlled growth of nanowhiskers
US20080090930A1 (en) 2006-10-11 2008-04-17 Hexion Specialty Chemicals, Inc. Radiation curable inks
US20080187724A1 (en) 2003-11-27 2008-08-07 Tokyo Ohka Kogyo Co., Ltd. Preparation method for nanomaterial, metal oxide nanomaterial formation composition used for the method,mold and metal oxide nanostructure
US20080187684A1 (en) 2007-02-07 2008-08-07 Imra America, Inc. Method for depositing crystalline titania nanoparticles and films
US20080220535A1 (en) 2007-01-11 2008-09-11 Valencell, Inc. Photoelectrocatalytic fluid analyte sensors and methods of fabricating and using same
US7432522B2 (en) 2003-04-04 2008-10-07 Qunano Ab Nanowhiskers with pn junctions, doped nanowhiskers, and methods for preparing them
US20080249600A1 (en) 2007-04-06 2008-10-09 Boston Scientific Scimed, Inc. Stents with drug reservoir layer and methods of making and using the same
US20080283411A1 (en) 2007-05-04 2008-11-20 Eastman Craig D Methods and devices for the production of Hydrocarbons from Carbon and Hydrogen sources
US20080305045A1 (en) 2007-06-07 2008-12-11 Prabhakaran Kuniyil Methods of synthesis of non-toxic multifunctional nanoparticles and applications
US20080318044A1 (en) 2007-06-25 2008-12-25 Board Of Trustees Of The University Of Arkansas Titanate nanowire, titanate nanowire scaffold, and processes of making same
US20090005880A1 (en) 2004-10-22 2009-01-01 Guya Bioscience S.R.L. Method for Preparing Endosseous Implants Anatase Titanium Dioxide Coating
US20090017303A1 (en) 2007-06-12 2009-01-15 Fas Alliances, Inc. Zinc oxide having enhanced photocatalytic activity
US7482382B2 (en) 2004-05-19 2009-01-27 The Texas A&M University System Process for preparing nano-sized metal oxide particles
US7491431B2 (en) 2004-12-20 2009-02-17 Nanogram Corporation Dense coating formation by reactive deposition
US20090104369A1 (en) 2006-03-27 2009-04-23 Beneq Oy Method for producing functional glass surfaces by changing the composition of the original surface
US7524370B1 (en) 2004-11-26 2009-04-28 Fujikura Ltd. Nanostructure and manufacturing method for same
US7528002B2 (en) 2004-06-25 2009-05-05 Qunano Ab Formation of nanowhiskers on a substrate of dissimilar material
US20090126604A1 (en) 2007-11-16 2009-05-21 Akhtar M Kamal Gas phase production of coated titania
US7541509B2 (en) 2004-08-31 2009-06-02 University Of Florida Research Foundation, Inc. Photocatalytic nanocomposites and applications thereof
US20090188407A1 (en) 2004-01-07 2009-07-30 Saila Karvinen Method for treating surfaces
US7575784B1 (en) 2000-10-17 2009-08-18 Nanogram Corporation Coating formation by reactive deposition
US20090220600A1 (en) 2005-10-31 2009-09-03 Ivan Parkin Antimicrobial films
US7601326B2 (en) 2004-11-23 2009-10-13 E. I. Du Pont De Nemours And Company Mesoporous oxide of zirconium
US7601327B2 (en) 2004-11-23 2009-10-13 E.I. Du Pont De Nemours And Company Mesoporous oxide of hafnium
US7608147B2 (en) 2003-04-04 2009-10-27 Qunano Ab Precisely positioned nanowhiskers and nanowhisker arrays and method for preparing them
US20090270997A1 (en) 2006-06-14 2009-10-29 Carlo Alberto Bignozzi Use of nanomaterials based on titanium dioxide and zirconium diozide as coatings for osteointegrated biomedical prostheses, and osteointegrated biomedical prostheses prepared therewith
US20090286936A1 (en) 2005-04-25 2009-11-19 Tokyo Ohka Kogyo Co., Ltd. Composition for formation of mold
US20090294692A1 (en) 2008-03-11 2009-12-03 Duke University Plasmonic assisted systems and methods for interior energy-activation from an exterior source
US20100003204A1 (en) 2008-07-02 2010-01-07 Energy Materials Corporation Nanoparticle hybrid sunscreens
US20100000874A1 (en) 2008-06-24 2010-01-07 Sundrop Fuels, Inc. Various methods and apparatus for solar assisted fuel production
US7645397B2 (en) 2004-01-15 2010-01-12 Nanosys, Inc. Nanocrystal doped matrixes
US7655274B2 (en) 2007-11-05 2010-02-02 Guardian Industries Corp. Combustion deposition using aqueous precursor solutions to deposit titanium dioxide coatings
US7677198B2 (en) 2005-11-28 2010-03-16 Industrial Technology Research Institute Method and apparatus for growing a composite metal sulphide photocatalyst thin film
US20100069229A1 (en) 2008-09-04 2010-03-18 The Hong Kong University Of Science And Technology Method For Synthesising A Nano-Product
US7687431B2 (en) 2004-03-19 2010-03-30 Nippon Oil Corporation Nanotube-shaped titania and process for producing the same
US7695689B2 (en) 2002-07-18 2010-04-13 National Institute Of Advanced Industrial Science And Technology Micro reactor device and method of manufacturing micro reactor device
US20100190639A1 (en) 2009-01-28 2010-07-29 Worsley Marcus A High surface area, electrically conductive nanocarbon-supported metal oxide
US20100261263A1 (en) 2009-03-18 2010-10-14 Duke University Up and down conversion systems for production of emitted light from various energy sources
US20100258446A1 (en) 2009-04-03 2010-10-14 Board Of Regents Of The Nevada System Of Higher Education, On Behalf Of The University Of Nevada Systems including nanotubular arrays for converting carbon dioxide to an organic compound
US7826336B2 (en) 2006-02-23 2010-11-02 Qunano Ab Data storage nanostructures
US20100278720A1 (en) 2009-05-04 2010-11-04 Wong Stanislaus S Methods of Making Binary Metal Oxide Nanostructures and Methods of Controlling Morphology of Same
US20100304204A1 (en) 2009-05-01 2010-12-02 Synkera Technologies, Inc. Energy conversion and energy storage devices and methods for making same
US7846864B2 (en) 2006-02-17 2010-12-07 Samsung Electronics Co., Ltd. Photocatalyst materials having semiconductor characteristics and methods for manufacturing and using the same
US20100308286A1 (en) 2007-09-13 2010-12-09 Commissariat A' L Energie Atomique Method for the synthesis of ticon, tion and tio nanoparticles by laser pyrolysis
US20100307593A1 (en) 2007-08-31 2010-12-09 Washington University Synthesis of nanostructured photoactive films with controlled morphology by a flame aerosol reactor
US20100326699A1 (en) 2007-12-05 2010-12-30 Corinne Jean Greyling Polymeric High Voltage Insulator with a Hard, Hydrophobic Surface
US20110012096A1 (en) 2008-02-20 2011-01-20 Ramot At Tel-Aviv University Ltd. Photoactive nanostructure and method of manufacturing same
US20110051220A1 (en) 2009-08-31 2011-03-03 Korea University Research And Business Foundation Transparent structures
US20110053285A1 (en) 2009-08-27 2011-03-03 Samsung Electronics Co., Ltd. Sensor using mass enhancement of nanoparticles
US7901660B2 (en) 2005-12-29 2011-03-08 The Board Of Trustees Of The University Of Illinois Quaternary oxides and catalysts containing quaternary oxides
US7931683B2 (en) 2007-07-27 2011-04-26 Boston Scientific Scimed, Inc. Articles having ceramic coated surfaces
US20110101862A1 (en) 2008-05-30 2011-05-05 Il-Hyo Koo System and methods for plasma application
US7938855B2 (en) 2007-11-02 2011-05-10 Boston Scientific Scimed, Inc. Deformable underlayer for stent
US7942926B2 (en) 2007-07-11 2011-05-17 Boston Scientific Scimed, Inc. Endoprosthesis coating
US20110123409A1 (en) 2007-11-30 2011-05-26 Cuong Phamhuu Chemical reactor with nanometric superstructure
US20110149400A1 (en) 2006-09-22 2011-06-23 Consejo Superior De Investigaciones Cientificas Process for preparing multilayers with an ordered mesoporous structure, material obtained in this manner, and use
US7976915B2 (en) 2007-05-23 2011-07-12 Boston Scientific Scimed, Inc. Endoprosthesis with select ceramic morphology
US20110171789A1 (en) 2004-10-07 2011-07-14 Pinon Technologies, Inc. Light-emitting nanoparticles and method of making same
US7981150B2 (en) 2006-11-09 2011-07-19 Boston Scientific Scimed, Inc. Endoprosthesis with coatings
US7988947B2 (en) 2004-11-23 2011-08-02 E. I. Du Pont De Nemours And Company Mesoporous oxide of titanium
US7994422B2 (en) 2004-02-04 2011-08-09 Samsung Sdi Co., Ltd. Photoelectrochemical cell
US20110200761A1 (en) 2010-02-18 2011-08-18 Takahisa Kusuura Nanoimprint lithography
US8003563B2 (en) 2007-03-23 2011-08-23 Kabushiki Kaisha Toshiba Method for producing tungsten trioxide powder for photocatalyst, tungsten trioxide powder for photocatalyst, and photocatalyst product
US8002823B2 (en) 2007-07-11 2011-08-23 Boston Scientific Scimed, Inc. Endoprosthesis coating
US20110208023A1 (en) 2008-12-04 2011-08-25 Goodall Eleanor V Systems, devices, and methods including implantable devices with anti-microbial properties
US20110208026A1 (en) 2008-12-04 2011-08-25 Goodall Eleanor V Systems, devices, and methods including implantable devices with anti-microbial properties
US20110208021A1 (en) 2008-12-04 2011-08-25 Goodall Eleanor V Systems, devices, and methods including implantable devices with anti-microbial properties
US20110214996A1 (en) 2009-12-02 2011-09-08 Akihito Yoshida Hydrogen production device and method for producing hydrogen
US20110220855A1 (en) 2010-03-12 2011-09-15 Weir John D Self-Cleaning Coating for Protection Against Hazardous Biopathogens and Toxic Chemical Agents Utilizing Both Super Hydrophobic Effects and Suitable Oxide Interfaces
US8029554B2 (en) 2007-11-02 2011-10-04 Boston Scientific Scimed, Inc. Stent with embedded material
US20110245074A1 (en) 2008-11-10 2011-10-06 Wilson Smith Photocatalytic structures, methods of making photocatalytic structures, and methods of photocatalysis
US20110245576A1 (en) 2008-03-06 2011-10-06 Keller-Spitzer Valerie Textile fibers having photocatalytic properties for degrading chemical or biological agents, method for preparing same and use thereof in photocatalysis
US20110262312A1 (en) 2008-09-12 2011-10-27 Cuong Pham-Huu Photocatalysts based on structured three-dimensional carbide, in particular b-sic, foams
US8048523B2 (en) 1997-10-31 2011-11-01 Nanogram Corporation Cerium oxide nanoparticles
US8049203B2 (en) 2006-12-22 2011-11-01 Qunano Ab Nanoelectronic structure and method of producing such
US20110275912A1 (en) 2008-12-04 2011-11-10 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US8066763B2 (en) 1998-04-11 2011-11-29 Boston Scientific Scimed, Inc. Drug-releasing stent with ceramic-containing layer
US8067054B2 (en) 2007-04-05 2011-11-29 Boston Scientific Scimed, Inc. Stents with ceramic drug reservoir layer and methods of making and using the same
US8070797B2 (en) 2007-03-01 2011-12-06 Boston Scientific Scimed, Inc. Medical device with a porous surface for delivery of a therapeutic agent
US8071156B2 (en) 2009-03-04 2011-12-06 Boston Scientific Scimed, Inc. Endoprostheses
US20110297846A1 (en) 2008-12-04 2011-12-08 The Regents Of The University Of California Electron injection nanostructured semiconductor material anode electroluminescence method and device
US8076846B2 (en) 2005-09-22 2011-12-13 Sony Corporation Metal oxide nanoparticles, production method thereof, light-emitting element assembly, and optical material
US8089681B2 (en) 2006-12-04 2012-01-03 3M Innovative Properties Company Electrochromic device based on layer by layer deposition
US20120010481A1 (en) 2008-12-04 2012-01-12 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US20120010314A1 (en) 2009-01-08 2012-01-12 The University Of Western Ontario Self-cleaning coatings
US20120040581A1 (en) 2009-04-01 2012-02-16 Centro De Estudios Investigaciones Tecnicas De Gipuzkoa Template-supported method of forming patterns of nanofibers in the electrospinning process and uses of said nanofibers
US20120066926A1 (en) 2008-06-09 2012-03-22 Kuniyil Prabhakaran Non-toxic multifunctional nanoparticles using sonication-aided incorporation of dopants
US20120077006A1 (en) 2010-01-27 2012-03-29 Lawrence Livermore National Security, Llc High surface area silicon carbide-coated carbon aerogel
US20120091482A1 (en) 2009-07-02 2012-04-19 Sharp Kabushiki Kaisha Organic el element, method for manufacturing the same, and organic el display device
US20120122668A1 (en) 2008-05-02 2012-05-17 Arcelik Anonim Sirketi Photocatalytic Nanocomposite Material
US8183587B2 (en) 2006-12-22 2012-05-22 Qunano Ab LED with upstanding nanowire structure and method of producing such
US8187620B2 (en) 2006-03-27 2012-05-29 Boston Scientific Scimed, Inc. Medical devices comprising a porous metal oxide or metal material and a polymer coating for delivering therapeutic agents
US20120152337A1 (en) 2010-12-21 2012-06-21 Tolga Aytug Hetero-junction photovoltaic device and method of fabricating the device
US20120152336A1 (en) 2009-06-16 2012-06-21 Pacific Northwest National Laboratory Aggregate particles of titanium dioxide for solar cells
US20120164561A1 (en) 2004-02-19 2012-06-28 Tapesh Yadav Zinc Comprising Nanoparticles And Related Nanotechnology
US20120172648A1 (en) 2011-01-05 2012-07-05 The Board Of Trustees Of The University Of Illinois Defect engineering in metal oxides via surfaces
US8216632B2 (en) 2007-11-02 2012-07-10 Boston Scientific Scimed, Inc. Endoprosthesis coating
US8221822B2 (en) 2007-07-31 2012-07-17 Boston Scientific Scimed, Inc. Medical device coating by laser cladding
US8227817B2 (en) 2006-12-22 2012-07-24 Qunano Ab Elevated LED
US8231980B2 (en) 2008-12-03 2012-07-31 Boston Scientific Scimed, Inc. Medical implants including iridium oxide
US20120209090A1 (en) 2011-02-14 2012-08-16 Searete Llc, A Limited Liability Corporation Of The Sate Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US8269214B2 (en) 2010-07-29 2012-09-18 General Electric Company Organic light emitting device with outcoupling layer for improved light extraction
US20120235094A1 (en) 2009-11-30 2012-09-20 Dic Corporation Silica nanofiber/metal oxide nanocrystal composite and method for producing the same
US8283412B2 (en) 2009-05-01 2012-10-09 Nanosys, Inc. Functionalized matrices for dispersion of nanostructures
US8287937B2 (en) 2009-04-24 2012-10-16 Boston Scientific Scimed, Inc. Endoprosthese
US20120265122A1 (en) 2009-12-10 2012-10-18 El-Shall M Samy Production of Graphene and Nanoparticle Catalysts Supposrted on Graphen Using Laser Radiation
US20120281428A1 (en) 2009-12-03 2012-11-08 Research Triangle Institute Reflective nanofiber lighting devices
US8320514B2 (en) 2004-12-09 2012-11-27 Kabushiki Kaisha Toshiba Nuclear power plant, method of forming corrosion-resistant coating therefor, and method of operating nuclear power plant
US20120299175A1 (en) 2005-02-23 2012-11-29 Bao Tran Systems and methods to cool semiconductor
US8344238B2 (en) 2005-07-19 2013-01-01 Solyndra Llc Self-cleaning protective coatings for use with photovoltaic cells
US20130001067A1 (en) 2010-12-23 2013-01-03 California Institute Of Technology Method and system for splitting water with visible light
US20130004778A1 (en) 2009-12-08 2013-01-03 Tucker Iii Gary D Polymeric hybrid organometalloglass
US8353949B2 (en) 2006-09-14 2013-01-15 Boston Scientific Scimed, Inc. Medical devices with drug-eluting coating
US20130015076A1 (en) 2010-02-08 2013-01-17 Akihito Yoshida Hydrogen production device and method for producing hydrogen
US8377414B2 (en) 2004-11-23 2013-02-19 E I Du Pont De Nemours And Company Mesoporous amorphous oxide of titanium
US8403239B2 (en) 2009-02-09 2013-03-26 Empire Technology Development Llc Liquid storage system, liquid container, and liquid lead-out control method
US20130079577A1 (en) 2011-09-28 2013-03-28 Uchicago Argonne, Llc Autogenic reaction synthesis of photocatalysts for solar fuel generation
US8415556B2 (en) 2008-12-19 2013-04-09 Applied Materials, Inc. Copper delafossite transparent P-type semiconductor thin film devices
US8426817B2 (en) 2011-03-02 2013-04-23 Texas Biochemicals, Inc. Monodispersed and spherical ZnS for nano-grain optical windows
US20130099196A1 (en) 2011-10-20 2013-04-25 University Of Kansas Semiconductor-Graphene Hybrids Formed Using Solution Growth
US20130102458A1 (en) 2006-12-18 2013-04-25 The Research Foundation Of State University Of New York Titanate and titania nanostructures and nanostructure assemblies, and methods of making same
US8431149B2 (en) 2007-03-01 2013-04-30 Boston Scientific Scimed, Inc. Coated medical devices for abluminal drug delivery
US8449603B2 (en) 2008-06-18 2013-05-28 Boston Scientific Scimed, Inc. Endoprosthesis coating
US20130184144A1 (en) 2012-01-18 2013-07-18 Northwestern University Methods of making non-covalently bonded carbon-titania nanocomposite thin films and applications of the same
US20130180862A1 (en) 2010-09-28 2013-07-18 Sharp Kabushiki Kaisha Hydrogen production device and method for producing hydrogen
US20130189607A1 (en) 2010-10-08 2013-07-25 Go Sakai Catalyst particles, carbon-supported catalyst particles and fuel cell catalysts, and methods of manufacturing such catalyst particles and carbon-supported catalyst particles
US20130212789A1 (en) 2012-02-16 2013-08-22 Brian John Conolly Heat Reflecting Composites with Knitted Insulation
US20130216774A1 (en) 2012-02-16 2013-08-22 Brian John Conolly Closed Cell Materials
US20130252798A1 (en) 2012-03-21 2013-09-26 National Tsing Hua University Metallic sulfide photocatalyst for carbon dioxide reduction and the preparation for the same
US20130250403A1 (en) 2012-03-22 2013-09-26 Palo Alto Research Center Incorporated High infrared transmission window with self cleaning hydrophilic surface
US8574615B2 (en) 2006-03-24 2013-11-05 Boston Scientific Scimed, Inc. Medical devices having nanoporous coatings for controlled therapeutic agent delivery
US8585627B2 (en) 2008-12-04 2013-11-19 The Invention Science Fund I, Llc Systems, devices, and methods including catheters configured to monitor biofilm formation having biofilm spectral information configured as a data structure
US8598266B2 (en) 2011-03-25 2013-12-03 Empire Technology Development Llc Flocculation agents for nanoparticle pollutants
US20140011013A1 (en) 2010-12-20 2014-01-09 The Regents Of The University Of California Superhydrophobic and superoleophobic nanosurfaces
US8647292B2 (en) 2007-08-17 2014-02-11 The Invention Science Fund I, Llc Systems, devices, and methods including catheters having components that are actively controllable between two or more wettability states
US8652874B2 (en) 2003-12-11 2014-02-18 Georgia Tech Research Corporation Large scale patterned growth of aligned one-dimensional nanostructures
US20140056947A1 (en) 2012-08-24 2014-02-27 Christian-Albrechts-Universitat Zu Kiel Virus traps
US8669325B1 (en) 1999-06-11 2014-03-11 Sydney Hyman Compositions image making mediums and images
US20140069819A1 (en) 2012-09-11 2014-03-13 Muhammad Akhyar Farrukh Zinc oxide nanoflakes for treatment of pollutants
US8706211B2 (en) 2007-08-17 2014-04-22 The Invention Science Fund I, Llc Systems, devices, and methods including catheters having self-cleaning surfaces
US8702640B2 (en) 2007-08-17 2014-04-22 The Invention Science Fund I, Llc System, devices, and methods including catheters configured to monitor and inhibit biofilm formation
US20140119026A1 (en) 2004-04-08 2014-05-01 Research Triangle Institute Reflective nanofiber lighting devices
US20140134092A1 (en) 2011-03-15 2014-05-15 Richard S. Shankman Facile synthesis of graphene, graphene derivatives and abrasive nanoparticles and their various uses, including as tribologically-beneficial lubricant additives
US8734718B2 (en) 2007-08-17 2014-05-27 The Invention Science Fund I, Llc Systems, devices, and methods including catheters having an actively controllable therapeutic agent delivery component
US20140147398A1 (en) 2011-03-03 2014-05-29 Wisys Technology Foundation Thermodynamic Solutions of Metal Chalcogenides and Mixed Metal Oxides and Chalcogenides
US8748111B2 (en) 2008-07-31 2014-06-10 Massachusetts Institute Of Technology Multiplexed olfactory receptor-based microsurface plasmon polariton detector
US20140160723A1 (en) 2012-07-23 2014-06-12 Research Triangle Institute Reflective nanofiber lighting devices
US8753304B2 (en) 2007-08-17 2014-06-17 The Invention Science Fund I, Llc Systems, devices, and methods including catheters having acoustically actuatable waveguide components for delivering a sterilizing stimulus to a region proximate a surface of the catheter
US20140174905A1 (en) 2012-12-20 2014-06-26 Sunpower Technologies Llc Photo-catalytic systems for the production of hydrogen
US20140174906A1 (en) 2012-12-20 2014-06-26 Sunpower Technologies Llc Photocatalytic system for the reduction of carbon dioxide
US8771343B2 (en) 2006-06-29 2014-07-08 Boston Scientific Scimed, Inc. Medical devices with selective titanium oxide coatings
US8790614B2 (en) 2009-01-09 2014-07-29 Colorado School Of Mines ZnO structures and methods of use
US20140213427A1 (en) 2013-01-31 2014-07-31 Sunpower Technologies Llc Photocatalyst for the Reduction of Carbon Dioxide
US8796417B2 (en) 2005-05-27 2014-08-05 Japan Science And Technology Agency Three-dimensional structure of functional material
US20140220091A1 (en) 2011-03-18 2014-08-07 University Of Limerick Embedding nanoparticles in thermoplastic polymers
US20140223997A1 (en) 2011-08-25 2014-08-14 Georgia Tech Research Corporation Gas Sensors and Methods of Preparation Thereof
US20140225498A1 (en) 2013-02-11 2014-08-14 Colorado State University Research Foundation Plasma catalyst chemical reaction apparatus
US8815273B2 (en) 2007-07-27 2014-08-26 Boston Scientific Scimed, Inc. Drug eluting medical devices having porous layers
US8815275B2 (en) 2006-06-28 2014-08-26 Boston Scientific Scimed, Inc. Coatings for medical devices comprising a therapeutic agent and a metallic material
US20140242389A1 (en) 2011-10-19 2014-08-28 Nexdot Process for the thickness growth of colloidal nanosheets and materials composed of said nanosheets
US20140243934A1 (en) 2007-11-06 2014-08-28 Duke University Non-invasive energy upconversion methods and systems
US20140252275A1 (en) 2012-12-20 2014-09-11 Sunpower Technologies Llc System for Harvesting Oriented Light - Water Splitting
US20140256534A1 (en) 2011-09-28 2014-09-11 University Of Connecticut Metal oxide nanorod arrays on monolithic substrates
US20140262743A1 (en) 2013-03-13 2014-09-18 Sunpower Technologies Llc System for Harvesting Oriented Light for Water Splitting and Carbon Dioxide Reduction
US20140262806A1 (en) 2013-03-15 2014-09-18 Sunpower Technologies Llc Method for Increasing Efficiency of Semiconductor Photocatalysts
US20140272623A1 (en) 2013-03-15 2014-09-18 Sunpower Technologies Llc System for increasing efficiency of semiconductor photocatalysts employing a high surface area substrate
US20140272030A1 (en) 2007-04-08 2014-09-18 Immunolight, Llc. Interior energy-activation of photo-reactive species inside a medium or body
US20140287237A1 (en) 2011-10-19 2014-09-25 Nexdot Method of increasing the thickness of colloidal nanosheets and materials consisting of said nanosheets
US20140294721A1 (en) 2013-03-29 2014-10-02 Board Of Trustees Of The Leland Stanford Junior University Doping and reduction of nanostructures and thin films through flame annealing
US20140295102A1 (en) 2011-04-12 2014-10-02 Aldo Di Carlo Sintering process of metal oxide based formulations
US20140311221A1 (en) 2011-08-25 2014-10-23 Georgia Tech Research Corporation Gas sensors and methods of preparation thereof
US8871926B1 (en) 2010-09-28 2014-10-28 Sandia Corporation Synthesis of porphyrin nanostructures
US20140323946A1 (en) 2011-07-08 2014-10-30 Duke University Phosphors and scintillators for light stimulation within a medium
US20140326311A1 (en) 2012-01-13 2014-11-06 The Regents Of The University Of California Metal-chalogenide photovoltaic device with metal-oxide nanoparticle window layer
US8883115B2 (en) 2006-01-12 2014-11-11 University Of Arkansas Technology Development Foundation TiO2 nanostructures, membranes and films, and methods of making same
US20140336039A1 (en) 2013-05-09 2014-11-13 Massachusetts Institute Of Technology Anti-fingerprint photocatalytic nanostructure for transparent surfaces
US8888731B2 (en) 2007-08-17 2014-11-18 The Invention Science Fund I, Llc Systems, devices, and methods including infection-fighting and monitoring shunts
US20140339072A1 (en) 2013-05-17 2014-11-20 Sunpower Technologies Llc Photocatalytic CO2 Reduction System
US20140342254A1 (en) 2013-05-17 2014-11-20 Sunpower Technologies Llc Photo-catalytic Systems for Production of Hydrogen
US8900292B2 (en) 2007-08-03 2014-12-02 Boston Scientific Scimed, Inc. Coating for medical device having increased surface area
US20140356574A1 (en) 2013-06-03 2014-12-04 Brian John Conolly Insulated Radiant Barriers in Apparel
US8921473B1 (en) 2004-04-30 2014-12-30 Sydney Hyman Image making medium
US8920491B2 (en) 2008-04-22 2014-12-30 Boston Scientific Scimed, Inc. Medical devices having a coating of inorganic material
US8932346B2 (en) 2008-04-24 2015-01-13 Boston Scientific Scimed, Inc. Medical devices having inorganic particle layers
US20150036234A1 (en) 2013-08-01 2015-02-05 Board Of Regents, The University Of Texas System Methods and compositions related to dielectric coated metal nanoparticles in thin-film opto-electronic conversion devices
US9005480B2 (en) 2013-03-14 2015-04-14 Nanosys, Inc. Method for solventless quantum dot exchange
US9018122B2 (en) 2009-03-12 2015-04-28 The Regents Of The University Of California Nanostructures having crystalline and amorphous phases
US20150125829A1 (en) 1999-06-11 2015-05-07 Sydney Hyman Image making medium compositions and images
US20150122639A1 (en) 2013-11-01 2015-05-07 Brookhaven Science Associates, Llc Chemically Passivated Zinc Oxide Photoelectrode for Photoelectrochemical Water Splitting
US9040145B2 (en) 2011-02-28 2015-05-26 Research Foundation Of The City University Of New York Polymer having superhydrophobic surface

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6614917B1 (en) * 1999-10-22 2003-09-02 Lockheed Martin Corporation Dynamic process for identifying objects in multi-dimensional data
US7295787B2 (en) * 2003-08-22 2007-11-13 Ricoh Company, Ltd. Device unit, an image forming apparatus, a management system, and a recycling system capable of using non-genuine device unit as replacement product

Patent Citations (373)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5284570A (en) * 1991-06-26 1994-02-08 Ppg Industries, Inc. Fluid sample analyte collector and calibration assembly
US6537517B1 (en) 1996-09-30 2003-03-25 Chuba Electric Power Co., Ltd. Crystalline titania having nanotube crystal shape and process for producing the same
US8048523B2 (en) 1997-10-31 2011-11-01 Nanogram Corporation Cerium oxide nanoparticles
US8066763B2 (en) 1998-04-11 2011-11-29 Boston Scientific Scimed, Inc. Drug-releasing stent with ceramic-containing layer
US20040144726A1 (en) 1998-12-09 2004-07-29 Chmelka Bradley F. Block polymer processing for mesostructured inorganic oxide materials
US20060118493A9 (en) 1998-12-09 2006-06-08 Chmelka Bradley F Block polymer processing for mesostructured inorganic oxide materials
US6350397B1 (en) 1999-03-10 2002-02-26 Aspen Research Corporation Optical member with layer having a coating geometry and composition that enhance cleaning properties
US20150125829A1 (en) 1999-06-11 2015-05-07 Sydney Hyman Image making medium compositions and images
US8669325B1 (en) 1999-06-11 2014-03-11 Sydney Hyman Compositions image making mediums and images
US7312087B2 (en) 2000-01-11 2007-12-25 Clinical Micro Sensors, Inc. Devices and methods for biochip multiplexing
US7575784B1 (en) 2000-10-17 2009-08-18 Nanogram Corporation Coating formation by reactive deposition
US6764796B2 (en) 2001-06-27 2004-07-20 University Of South Florida Maskless photolithography using plasma displays
US7670581B2 (en) 2001-07-02 2010-03-02 Brian A. Korgel Light-emitting nanoparticles and methods of making same
US6846565B2 (en) 2001-07-02 2005-01-25 Board Of Regents, The University Of Texas System Light-emitting nanoparticles and method of making same
US20030003300A1 (en) 2001-07-02 2003-01-02 Korgel Brian A. Light-emitting nanoparticles and method of making same
US7722953B2 (en) 2001-07-02 2010-05-25 Brian A. Korgel Light-emitting nanoparticles comprising octanol as a passivating agent, and method of making same
US20090074649A1 (en) 2001-07-02 2009-03-19 Korgel Brian A Light-emitting nanoparticles and methods of making same
US8618595B2 (en) 2001-07-02 2013-12-31 Merck Patent Gmbh Applications of light-emitting nanoparticles
US20030034486A1 (en) 2001-07-02 2003-02-20 Korgel Brian A. Applications of light-emitting nanoparticles
US20050267345A1 (en) 2001-07-02 2005-12-01 The University Of Texas System, Board Of Regents Applications of light-emitting nanoparticles
US20050266697A1 (en) 2001-07-02 2005-12-01 The University Of Texas System, Board Of Regents Light-emitting nanoparticles and method of making same
US6918946B2 (en) 2001-07-02 2005-07-19 Board Of Regents, The University Of Texas System Applications of light-emitting nanoparticles
US7285188B2 (en) 2001-12-21 2007-10-23 Georgia Tech Research Corporation Oxynitride compounds, methods of preparation, and uses thereof
US7071139B2 (en) 2001-12-21 2006-07-04 Georgia Tech Research Corporation Oxynitride compounds, methods of preparation, and uses thereof
US7186392B2 (en) 2001-12-21 2007-03-06 Georgia Tech Research Corporation Oxynitride compounds, methods of preparation, and uses thereof
US7335908B2 (en) 2002-07-08 2008-02-26 Qunano Ab Nanostructures and methods for manufacturing the same
US7682943B2 (en) 2002-07-08 2010-03-23 Qunano Ab Nanostructures and methods for manufacturing the same
US8450717B1 (en) 2002-07-08 2013-05-28 Qunano Ab Nanostructures and methods for manufacturing the same
US7745813B2 (en) 2002-07-08 2010-06-29 Qunano Ab Nanostructures and methods for manufacturing the same
US8772626B2 (en) 2002-07-08 2014-07-08 Qunano Ab Nanostructures and methods for manufacturing the same
US7695689B2 (en) 2002-07-18 2010-04-13 National Institute Of Advanced Industrial Science And Technology Micro reactor device and method of manufacturing micro reactor device
US20060102468A1 (en) 2002-08-21 2006-05-18 Battelle Memorial Institute Photolytic oxygenator with carbon dioxide and/or hydrogen separation and fixation
US7883610B2 (en) 2002-08-21 2011-02-08 Battelle Memorial Institute Photolytic oxygenator with carbon dioxide and/or hydrogen separation and fixation
US20040224147A1 (en) 2002-12-06 2004-11-11 Chou Kuo Chung Screen and manufacturing method thereof
US7229600B2 (en) 2003-01-31 2007-06-12 Nanoproducts Corporation Nanoparticles of rare earth oxides
US7498005B2 (en) 2003-01-31 2009-03-03 Ppg Industries Ohio, Inc. Nanoparticles of rare earth oxides
US20080138267A1 (en) 2003-01-31 2008-06-12 Nanoproducts Corporation Nanoparticles of rare earth oxides
US20090220698A1 (en) 2003-01-31 2009-09-03 Ppg Industries Ohio, Inc. Nanoparticles of rare earth oxides
US20070104629A1 (en) 2003-01-31 2007-05-10 Nanoproducts Corporation Nanoparticles of rare earth oxides
US20040156986A1 (en) 2003-02-10 2004-08-12 Nanoproducts Corporation Color pigments nanotechnology
US20050126338A1 (en) 2003-02-24 2005-06-16 Nanoproducts Corporation Zinc comprising nanoparticles and related nanotechnology
US20060182997A1 (en) 2003-03-17 2006-08-17 Takao Yamamoto Noble metal-magnetic metal oxide composite particle and method for producing same
US7608147B2 (en) 2003-04-04 2009-10-27 Qunano Ab Precisely positioned nanowhiskers and nanowhisker arrays and method for preparing them
US8790462B2 (en) 2003-04-04 2014-07-29 Qunano Ab Precisely positioned nanowhiskers and nanowhisker arrays and method for preparing them
US7432522B2 (en) 2003-04-04 2008-10-07 Qunano Ab Nanowhiskers with pn junctions, doped nanowhiskers, and methods for preparing them
US8120009B2 (en) 2003-04-04 2012-02-21 Qunano Ab Nanowhiskers with PN junctions, doped nanowhiskers, and methods for preparing them
US7910492B2 (en) 2003-04-04 2011-03-22 Qunano Ab Nanowhiskers with PN junctions, doped nanowhiskers, and methods for preparing them
US8242481B2 (en) 2003-04-04 2012-08-14 Qunano Ab Nanowhiskers with PN junctions, doped nanowhiskers, and methods for preparing them
US20050008861A1 (en) 2003-07-08 2005-01-13 Nanoproducts Corporation Silver comprising nanoparticles and related nanotechnology
US20050031876A1 (en) 2003-07-18 2005-02-10 Songwei Lu Nanostructured coatings and related methods
US8679580B2 (en) 2003-07-18 2014-03-25 Ppg Industries Ohio, Inc. Nanostructured coatings and related methods
US20070087187A1 (en) 2003-07-18 2007-04-19 Ppg Industries Ohio, Inc. Nanostructured coatings and related methods
US20050191492A1 (en) 2003-09-26 2005-09-01 Nanoproducts Corporation Titanium comprising nanoparticles and related nanotechnology
US7232556B2 (en) 2003-09-26 2007-06-19 Nanoproducts Corporation Titanium comprising nanoparticles and related nanotechnology
US20070000407A1 (en) 2003-10-09 2007-01-04 York International Corporation Nano composite photocatalytic coating
US7572400B2 (en) 2003-11-27 2009-08-11 Tokyo Ohka Kogyo Co., Ltd. Production method for a nanomaterial
US20080187724A1 (en) 2003-11-27 2008-08-07 Tokyo Ohka Kogyo Co., Ltd. Preparation method for nanomaterial, metal oxide nanomaterial formation composition used for the method,mold and metal oxide nanostructure
US20060243321A1 (en) 2003-12-08 2006-11-02 Matsushita Electric Industrial Co., Ltd. Semiconductor electrode, production process thereof and photovoltaic cell using semiconductor electrode
US7476607B2 (en) 2003-12-08 2009-01-13 Panasonic Corporation Semiconductor electrode, production process thereof and photovoltaic cell using semiconductor electrode
US8652874B2 (en) 2003-12-11 2014-02-18 Georgia Tech Research Corporation Large scale patterned growth of aligned one-dimensional nanostructures
US20090188407A1 (en) 2004-01-07 2009-07-30 Saila Karvinen Method for treating surfaces
US8592037B2 (en) 2004-01-15 2013-11-26 Samsung Electronics Co., Ltd. Nanocrystal doped matrixes
US8425803B2 (en) 2004-01-15 2013-04-23 Samsung Electronics Co., Ltd. Nanocrystal doped matrixes
US7645397B2 (en) 2004-01-15 2010-01-12 Nanosys, Inc. Nanocrystal doped matrixes
US7994422B2 (en) 2004-02-04 2011-08-09 Samsung Sdi Co., Ltd. Photoelectrochemical cell
US7354850B2 (en) 2004-02-06 2008-04-08 Qunano Ab Directionally controlled growth of nanowhiskers
US7911035B2 (en) 2004-02-06 2011-03-22 Qunano Ab Directionally controlled growth of nanowhiskers
US20120164561A1 (en) 2004-02-19 2012-06-28 Tapesh Yadav Zinc Comprising Nanoparticles And Related Nanotechnology
US7687431B2 (en) 2004-03-19 2010-03-30 Nippon Oil Corporation Nanotube-shaped titania and process for producing the same
US7489537B2 (en) 2004-04-06 2009-02-10 Bao Tran Nano-electronic memory array
US7630227B2 (en) 2004-04-06 2009-12-08 Bao Tran Nano-electronic memory array
US7864560B2 (en) 2004-04-06 2011-01-04 Bao Tran Nano-electronic array
US7375417B2 (en) 2004-04-06 2008-05-20 Bao Tran NANO IC packaging
US8450716B2 (en) 2004-04-06 2013-05-28 Bao Tran Resistive memory
US20100073995A1 (en) 2004-04-06 2010-03-25 Bao Tran Nano -electronic array
US8653497B2 (en) 2004-04-06 2014-02-18 Bao Tran Resistive memory
US20050231855A1 (en) 2004-04-06 2005-10-20 Availableip.Com NANO-electronic memory array
US20060145326A1 (en) 2004-04-06 2006-07-06 Available For Licensing NANO IC packaging
US20140126269A1 (en) 2004-04-06 2014-05-08 Bao Tran Resistive memory
US20050230822A1 (en) 2004-04-06 2005-10-20 Availableip.Com NANO IC packaging
US20120091429A1 (en) 2004-04-06 2012-04-19 Bao Tran Resistive memory
US20050218398A1 (en) 2004-04-06 2005-10-06 Availableip.Com NANO-electronics
US7330369B2 (en) 2004-04-06 2008-02-12 Bao Tran NANO-electronic memory array
US20050218397A1 (en) 2004-04-06 2005-10-06 Availableip.Com NANO-electronics for programmable array IC
US20080239791A1 (en) 2004-04-06 2008-10-02 Bao Tran Nano-Electronic Memory Array
US20060260674A1 (en) 2004-04-06 2006-11-23 Tran Bao Q Nano ic
US20090116277A1 (en) 2004-04-06 2009-05-07 Bao Tran Nano-electronic memory array
US7019391B2 (en) 2004-04-06 2006-03-28 Bao Tran NANO IC packaging
US8084762B2 (en) 2004-04-06 2011-12-27 Bao Tran Resistive memory
US20130163310A1 (en) 2004-04-06 2013-06-27 Bao Tran Resistive memory
US20110110141A1 (en) 2004-04-06 2011-05-12 Bao Tran Resistive memory
US20140119026A1 (en) 2004-04-08 2014-05-01 Research Triangle Institute Reflective nanofiber lighting devices
US8921473B1 (en) 2004-04-30 2014-12-30 Sydney Hyman Image making medium
US20050260269A1 (en) 2004-05-18 2005-11-24 Jurgen Engelbrecht Composition containing nano-crystalline apatite
US7482382B2 (en) 2004-05-19 2009-01-27 The Texas A&M University System Process for preparing nano-sized metal oxide particles
US20050265935A1 (en) 2004-05-28 2005-12-01 Hollingsworth Jennifer A Semiconductor nanocrystal quantum dots and metallic nanocrystals as UV blockers and colorants for suncreens and/or sunless tanning compositions
US8357954B2 (en) 2004-06-25 2013-01-22 Qunano Ab Formation of nanowhiskers on a substrate of dissimilar material
US7528002B2 (en) 2004-06-25 2009-05-05 Qunano Ab Formation of nanowhiskers on a substrate of dissimilar material
US7960260B2 (en) 2004-06-25 2011-06-14 Qunano Ab Formation of nanowhiskers on a substrate of dissimilar material
US7541509B2 (en) 2004-08-31 2009-06-02 University Of Florida Research Foundation, Inc. Photocatalytic nanocomposites and applications thereof
US8163633B2 (en) 2004-10-07 2012-04-24 Merck Patent Gmbh Light-emitting nanoparticles and method of making same
US20110171789A1 (en) 2004-10-07 2011-07-14 Pinon Technologies, Inc. Light-emitting nanoparticles and method of making same
US20090005880A1 (en) 2004-10-22 2009-01-01 Guya Bioscience S.R.L. Method for Preparing Endosseous Implants Anatase Titanium Dioxide Coating
US7601327B2 (en) 2004-11-23 2009-10-13 E.I. Du Pont De Nemours And Company Mesoporous oxide of hafnium
US7988947B2 (en) 2004-11-23 2011-08-02 E. I. Du Pont De Nemours And Company Mesoporous oxide of titanium
US8377414B2 (en) 2004-11-23 2013-02-19 E I Du Pont De Nemours And Company Mesoporous amorphous oxide of titanium
US7601326B2 (en) 2004-11-23 2009-10-13 E. I. Du Pont De Nemours And Company Mesoporous oxide of zirconium
US8221655B2 (en) 2004-11-23 2012-07-17 E. I. Du Pont De Nemours And Company Mesoporous oxide of titanium
US7524370B1 (en) 2004-11-26 2009-04-28 Fujikura Ltd. Nanostructure and manufacturing method for same
US8163084B2 (en) 2004-11-26 2012-04-24 Fujikura Ltd. Nanostructure and manufacturing method for same
US8320514B2 (en) 2004-12-09 2012-11-27 Kabushiki Kaisha Toshiba Nuclear power plant, method of forming corrosion-resistant coating therefor, and method of operating nuclear power plant
US8731132B2 (en) 2004-12-09 2014-05-20 Kabushiki Kaisha Toshiba Nuclear power plant, method of forming corrosion-resistant coating therefor, and method of operating nuclear power plant
US8681925B2 (en) 2004-12-09 2014-03-25 Kabushiki Kaisha Toshiba Nuclear power plant, method of forming corrosion-resistant coating therefor, and method of operating nuclear power plant
US7491431B2 (en) 2004-12-20 2009-02-17 Nanogram Corporation Dense coating formation by reactive deposition
US20060133975A1 (en) 2004-12-20 2006-06-22 Sharp Kabushiki Kaisha Adsorbent, porous filter, air cleaning device, method of cleaning air, and method of manufacturing porous filter
US7927567B2 (en) 2004-12-20 2011-04-19 Sharp Kabushiki Kaisha Adsorbent, porous filter, air cleaning device, method of cleaning air, and method of manufacturing porous filter
US20110238001A1 (en) 2005-02-02 2011-09-29 Wei Chen Nanoparticle based photodynamic therapy and methods of making and using same
US20120299175A1 (en) 2005-02-23 2012-11-29 Bao Tran Systems and methods to cool semiconductor
US20060210798A1 (en) 2005-03-16 2006-09-21 Clemens Burda Doped metal oxide nanoparticles and methods for making and using same
US20060240386A1 (en) 2005-04-18 2006-10-26 Nano-Proprietary, Inc. Method and apparatus for oral care
US20090286936A1 (en) 2005-04-25 2009-11-19 Tokyo Ohka Kogyo Co., Ltd. Composition for formation of mold
US8796417B2 (en) 2005-05-27 2014-08-05 Japan Science And Technology Agency Three-dimensional structure of functional material
US8344238B2 (en) 2005-07-19 2013-01-01 Solyndra Llc Self-cleaning protective coatings for use with photovoltaic cells
US20070039814A1 (en) 2005-08-19 2007-02-22 Maggard Paul A Solar photocatalysis using transition-metal oxides combining d0 and d6 electron configurations
US7763149B2 (en) 2005-08-19 2010-07-27 North Carolina State University Solar photocatalysis using transition-metal oxides combining d0 and d6 electron configurations
US20080026041A1 (en) 2005-09-12 2008-01-31 Argonide Corporation Non-woven media incorporating ultrafine or nanosize powders
US20080031806A1 (en) 2005-09-16 2008-02-07 John Gavenonis Continuous process for making nanocrystalline metal dioxide
US8076846B2 (en) 2005-09-22 2011-12-13 Sony Corporation Metal oxide nanoparticles, production method thereof, light-emitting element assembly, and optical material
US20070084507A1 (en) 2005-10-19 2007-04-19 Noh Chang H Dye-sensitized photovoltaic cell and method for producing electrode substrate for the photovoltaic cell
US20090220600A1 (en) 2005-10-31 2009-09-03 Ivan Parkin Antimicrobial films
US20070095389A1 (en) 2005-11-01 2007-05-03 Cho Sung H Transparent electrode for solar cells, manufacturing method thereof, and semiconductor electrode comprising the same
US20070128707A1 (en) 2005-11-10 2007-06-07 Oregon State University Method for making metal oxides
US7677198B2 (en) 2005-11-28 2010-03-16 Industrial Technology Research Institute Method and apparatus for growing a composite metal sulphide photocatalyst thin film
US20080020127A1 (en) 2005-12-12 2008-01-24 Allaccem, Inc. Methods and systems for coating a medical device
US8268381B2 (en) 2005-12-12 2012-09-18 Allaccem, Inc. Methods and systems for coating a medical device
US20080207581A1 (en) 2005-12-12 2008-08-28 Allaccem, Inc. Methods and systems for coating a surface
US8067403B2 (en) 2005-12-12 2011-11-29 Allaccem, Inc. Methods and systems for preparing an antimicrobial composition
US20070202342A1 (en) 2005-12-12 2007-08-30 Whiteford Jeffery A Methods and systems for coating an oral surface
US20080021212A1 (en) 2005-12-12 2008-01-24 Allaccem, Inc. Methods and systems for preparing an antimicrobial composition
US20130150809A1 (en) 2005-12-12 2013-06-13 Jeffery A. Whiteford Methods and systems for coating a medical device
US7713955B2 (en) 2005-12-12 2010-05-11 Allaccem, Inc. Methods and systems for coatings a surface
US20110015300A1 (en) 2005-12-12 2011-01-20 Allaccem, Inc. Methods and systems for coating a surface
US8067402B2 (en) 2005-12-12 2011-11-29 Allaccem, Inc. Methods and systems for coating an oral surface
US8796544B2 (en) 2005-12-14 2014-08-05 Massachusetts Institute Of Technology Bio-sensitized solar cells (BSSC)
US20070157967A1 (en) 2005-12-14 2007-07-12 Massachusetts Institute Of Technology Bio-sensitized solar cells (BSSC)
US7521394B2 (en) 2005-12-29 2009-04-21 The Board Of Trustees Of The University Of Illinois Nanoparticles containing titanium oxide
US20070202334A1 (en) 2005-12-29 2007-08-30 Rong-Cai Xie Nanoparticles containing titanium oxide
US8541337B2 (en) 2005-12-29 2013-09-24 The Board Of Trustees Of The University Of Illinois Quaternary oxides and catalysts containing quaternary oxides
US7901660B2 (en) 2005-12-29 2011-03-08 The Board Of Trustees Of The University Of Illinois Quaternary oxides and catalysts containing quaternary oxides
US8883115B2 (en) 2006-01-12 2014-11-11 University Of Arkansas Technology Development Foundation TiO2 nanostructures, membranes and films, and methods of making same
US20070218049A1 (en) 2006-02-02 2007-09-20 Wei Chen Nanoparticle based photodynamic therapy and methods of making and using same
US20070181508A1 (en) 2006-02-09 2007-08-09 Gui John Y Photocatalytic fluid purification systems and methods for purifying a fluid
US7846864B2 (en) 2006-02-17 2010-12-07 Samsung Electronics Co., Ltd. Photocatalyst materials having semiconductor characteristics and methods for manufacturing and using the same
US7826336B2 (en) 2006-02-23 2010-11-02 Qunano Ab Data storage nanostructures
US8574615B2 (en) 2006-03-24 2013-11-05 Boston Scientific Scimed, Inc. Medical devices having nanoporous coatings for controlled therapeutic agent delivery
US20090104369A1 (en) 2006-03-27 2009-04-23 Beneq Oy Method for producing functional glass surfaces by changing the composition of the original surface
US8187620B2 (en) 2006-03-27 2012-05-29 Boston Scientific Scimed, Inc. Medical devices comprising a porous metal oxide or metal material and a polymer coating for delivering therapeutic agents
US20070285843A1 (en) 2006-06-12 2007-12-13 Tran Bao Q NANO-electronics
US7393699B2 (en) 2006-06-12 2008-07-01 Tran Bao Q NANO-electronics
US20090270997A1 (en) 2006-06-14 2009-10-29 Carlo Alberto Bignozzi Use of nanomaterials based on titanium dioxide and zirconium diozide as coatings for osteointegrated biomedical prostheses, and osteointegrated biomedical prostheses prepared therewith
US8178122B2 (en) 2006-06-14 2012-05-15 Nm Tech Nanomaterials And Microdevices Technology Ltd. Use of nanomaterials based on titanium dioxide and zirconium diozide as coatings for osteointegrated biomedical prostheses, and osteointegrated biomedical prostheses prepared therewith
US8815275B2 (en) 2006-06-28 2014-08-26 Boston Scientific Scimed, Inc. Coatings for medical devices comprising a therapeutic agent and a metallic material
US8771343B2 (en) 2006-06-29 2014-07-08 Boston Scientific Scimed, Inc. Medical devices with selective titanium oxide coatings
US20120181163A1 (en) 2006-08-31 2012-07-19 Kabushiki Kaisha Toyota Chuo Kenkyusho Light energy conversion material
US20080057420A1 (en) 2006-08-31 2008-03-06 Kabushiki Kaisha Toyota Chuo Kenkyusho Light energy conversion material
US8779277B2 (en) 2006-08-31 2014-07-15 Kabushiki Kaisha Toyota Chuo Kenkyusho Light energy conversion material
US8247680B2 (en) 2006-08-31 2012-08-21 Kabushiki Kaisha Toyota Chuo Kenkyusho Light energy conversion material
US8353949B2 (en) 2006-09-14 2013-01-15 Boston Scientific Scimed, Inc. Medical devices with drug-eluting coating
US20110149400A1 (en) 2006-09-22 2011-06-23 Consejo Superior De Investigaciones Cientificas Process for preparing multilayers with an ordered mesoporous structure, material obtained in this manner, and use
US20080090930A1 (en) 2006-10-11 2008-04-17 Hexion Specialty Chemicals, Inc. Radiation curable inks
US7977402B2 (en) 2006-10-11 2011-07-12 Collins Ink Corporation Radiation curable inks
US7981150B2 (en) 2006-11-09 2011-07-19 Boston Scientific Scimed, Inc. Endoprosthesis with coatings
US8089681B2 (en) 2006-12-04 2012-01-03 3M Innovative Properties Company Electrochromic device based on layer by layer deposition
US8440162B1 (en) 2006-12-18 2013-05-14 The Research Foundation Of State University Of New York Titanate and titania nanostructures and nanostructure assemblies, and methods of making same
US20130102458A1 (en) 2006-12-18 2013-04-25 The Research Foundation Of State University Of New York Titanate and titania nanostructures and nanostructure assemblies, and methods of making same
US8227817B2 (en) 2006-12-22 2012-07-24 Qunano Ab Elevated LED
US8049203B2 (en) 2006-12-22 2011-11-01 Qunano Ab Nanoelectronic structure and method of producing such
US8067299B2 (en) 2006-12-22 2011-11-29 Qunano Ab Nanoelectronic structure and method of producing such
US8455857B2 (en) 2006-12-22 2013-06-04 Qunano Ab Nanoelectronic structure and method of producing such
US8183587B2 (en) 2006-12-22 2012-05-22 Qunano Ab LED with upstanding nanowire structure and method of producing such
US8796119B2 (en) 2006-12-22 2014-08-05 Qunano Ab Nanoelectronic structure and method of producing such
US20080220535A1 (en) 2007-01-11 2008-09-11 Valencell, Inc. Photoelectrocatalytic fluid analyte sensors and methods of fabricating and using same
US20130059396A1 (en) 2007-01-11 2013-03-07 Valencell, Inc. Photoelectrocatalytic fluid analyte sensors including reference electrodes, and methods of fabricating and using same
US8323982B2 (en) 2007-01-11 2012-12-04 Valencell, Inc. Photoelectrocatalytic fluid analyte sensors and methods of fabricating and using same
US8652409B2 (en) 2007-01-11 2014-02-18 Valencell, Inc. Photoelectrocatalytic fluid analyte sensors including reference electrodes
US20090311513A1 (en) 2007-02-07 2009-12-17 Imra America, Inc. Method for depositing crystalline titania nanoparticles and films
US8609205B2 (en) 2007-02-07 2013-12-17 Imra America, Inc. Method for depositing crystalline titania nanoparticles and films
US20080187684A1 (en) 2007-02-07 2008-08-07 Imra America, Inc. Method for depositing crystalline titania nanoparticles and films
US20140093744A1 (en) 2007-02-07 2014-04-03 Imra America, Inc. Method for depositing crystalline titania nanoparticles and films
US8070797B2 (en) 2007-03-01 2011-12-06 Boston Scientific Scimed, Inc. Medical device with a porous surface for delivery of a therapeutic agent
US8431149B2 (en) 2007-03-01 2013-04-30 Boston Scientific Scimed, Inc. Coated medical devices for abluminal drug delivery
US8003563B2 (en) 2007-03-23 2011-08-23 Kabushiki Kaisha Toshiba Method for producing tungsten trioxide powder for photocatalyst, tungsten trioxide powder for photocatalyst, and photocatalyst product
US8067054B2 (en) 2007-04-05 2011-11-29 Boston Scientific Scimed, Inc. Stents with ceramic drug reservoir layer and methods of making and using the same
US20080249600A1 (en) 2007-04-06 2008-10-09 Boston Scientific Scimed, Inc. Stents with drug reservoir layer and methods of making and using the same
US20140163303A1 (en) 2007-04-08 2014-06-12 Duke University Plasmonic assisted systems and methods for interior energy-activation from an exterior source
US20140272030A1 (en) 2007-04-08 2014-09-18 Immunolight, Llc. Interior energy-activation of photo-reactive species inside a medium or body
US9004131B2 (en) 2007-04-08 2015-04-14 Duke University Plasmonic assisted systems and methods for interior energy-activation from an exterior source
US20140222117A1 (en) 2007-04-08 2014-08-07 Duke University Plasmonic assisted systems and methods for interior energy-activation from an exterior source
US20130156905A1 (en) 2007-04-08 2013-06-20 Immunolight, Llc Plasmonic assisted systems and methods for interior energy-activation from an exterior source
US20080283411A1 (en) 2007-05-04 2008-11-20 Eastman Craig D Methods and devices for the production of Hydrocarbons from Carbon and Hydrogen sources
US8277631B2 (en) 2007-05-04 2012-10-02 Principle Energy Solutions, Inc. Methods and devices for the production of hydrocarbons from carbon and hydrogen sources
US20120329657A1 (en) 2007-05-04 2012-12-27 Principle Energy Solutions, Inc. Methods and devices for the production of hydrocarbons from carbon and hydrogen sources
US7976915B2 (en) 2007-05-23 2011-07-12 Boston Scientific Scimed, Inc. Endoprosthesis with select ceramic morphology
US20080305045A1 (en) 2007-06-07 2008-12-11 Prabhakaran Kuniyil Methods of synthesis of non-toxic multifunctional nanoparticles and applications
US20090017303A1 (en) 2007-06-12 2009-01-15 Fas Alliances, Inc. Zinc oxide having enhanced photocatalytic activity
US8318297B2 (en) 2007-06-25 2012-11-27 Board Of Trustees Of The University Of Arkansas Titanate nanowire, titanate nanowire scaffold, and processes of making same
US20080318044A1 (en) 2007-06-25 2008-12-25 Board Of Trustees Of The University Of Arkansas Titanate nanowire, titanate nanowire scaffold, and processes of making same
US8002823B2 (en) 2007-07-11 2011-08-23 Boston Scientific Scimed, Inc. Endoprosthesis coating
US7942926B2 (en) 2007-07-11 2011-05-17 Boston Scientific Scimed, Inc. Endoprosthesis coating
US7931683B2 (en) 2007-07-27 2011-04-26 Boston Scientific Scimed, Inc. Articles having ceramic coated surfaces
US8815273B2 (en) 2007-07-27 2014-08-26 Boston Scientific Scimed, Inc. Drug eluting medical devices having porous layers
US8221822B2 (en) 2007-07-31 2012-07-17 Boston Scientific Scimed, Inc. Medical device coating by laser cladding
US8900292B2 (en) 2007-08-03 2014-12-02 Boston Scientific Scimed, Inc. Coating for medical device having increased surface area
US8647292B2 (en) 2007-08-17 2014-02-11 The Invention Science Fund I, Llc Systems, devices, and methods including catheters having components that are actively controllable between two or more wettability states
US8706211B2 (en) 2007-08-17 2014-04-22 The Invention Science Fund I, Llc Systems, devices, and methods including catheters having self-cleaning surfaces
US8888731B2 (en) 2007-08-17 2014-11-18 The Invention Science Fund I, Llc Systems, devices, and methods including infection-fighting and monitoring shunts
US8734718B2 (en) 2007-08-17 2014-05-27 The Invention Science Fund I, Llc Systems, devices, and methods including catheters having an actively controllable therapeutic agent delivery component
US8702640B2 (en) 2007-08-17 2014-04-22 The Invention Science Fund I, Llc System, devices, and methods including catheters configured to monitor and inhibit biofilm formation
US8753304B2 (en) 2007-08-17 2014-06-17 The Invention Science Fund I, Llc Systems, devices, and methods including catheters having acoustically actuatable waveguide components for delivering a sterilizing stimulus to a region proximate a surface of the catheter
US20100307593A1 (en) 2007-08-31 2010-12-09 Washington University Synthesis of nanostructured photoactive films with controlled morphology by a flame aerosol reactor
US20100308286A1 (en) 2007-09-13 2010-12-09 Commissariat A' L Energie Atomique Method for the synthesis of ticon, tion and tio nanoparticles by laser pyrolysis
US8216632B2 (en) 2007-11-02 2012-07-10 Boston Scientific Scimed, Inc. Endoprosthesis coating
US7938855B2 (en) 2007-11-02 2011-05-10 Boston Scientific Scimed, Inc. Deformable underlayer for stent
US8029554B2 (en) 2007-11-02 2011-10-04 Boston Scientific Scimed, Inc. Stent with embedded material
US7655274B2 (en) 2007-11-05 2010-02-02 Guardian Industries Corp. Combustion deposition using aqueous precursor solutions to deposit titanium dioxide coatings
US20140243934A1 (en) 2007-11-06 2014-08-28 Duke University Non-invasive energy upconversion methods and systems
US8663380B2 (en) 2007-11-16 2014-03-04 Cristal Usa Inc. Gas phase production of coated titania
US20090126604A1 (en) 2007-11-16 2009-05-21 Akhtar M Kamal Gas phase production of coated titania
US20110123409A1 (en) 2007-11-30 2011-05-26 Cuong Phamhuu Chemical reactor with nanometric superstructure
US8574419B2 (en) 2007-11-30 2013-11-05 Centre National De La Recherche Scientifique Chemical reactor with nanometric superstructure
US20100326699A1 (en) 2007-12-05 2010-12-30 Corinne Jean Greyling Polymeric High Voltage Insulator with a Hard, Hydrophobic Surface
US20110012096A1 (en) 2008-02-20 2011-01-20 Ramot At Tel-Aviv University Ltd. Photoactive nanostructure and method of manufacturing same
US20110245576A1 (en) 2008-03-06 2011-10-06 Keller-Spitzer Valerie Textile fibers having photocatalytic properties for degrading chemical or biological agents, method for preparing same and use thereof in photocatalysis
US20130240758A1 (en) 2008-03-11 2013-09-19 Immunolight, Llc Plasmonic assisted systems and methods for interior energy-activation from an exterior source
US20090294692A1 (en) 2008-03-11 2009-12-03 Duke University Plasmonic assisted systems and methods for interior energy-activation from an exterior source
US8927615B2 (en) 2008-03-11 2015-01-06 Immunolight, Llc Plasmonic assisted systems and methods for interior energy-activation from an exterior source
US8376013B2 (en) 2008-03-11 2013-02-19 Duke University Plasmonic assisted systems and methods for interior energy-activation from an exterior source
US8920491B2 (en) 2008-04-22 2014-12-30 Boston Scientific Scimed, Inc. Medical devices having a coating of inorganic material
US8932346B2 (en) 2008-04-24 2015-01-13 Boston Scientific Scimed, Inc. Medical devices having inorganic particle layers
US20120122668A1 (en) 2008-05-02 2012-05-17 Arcelik Anonim Sirketi Photocatalytic Nanocomposite Material
US8994270B2 (en) 2008-05-30 2015-03-31 Colorado State University Research Foundation System and methods for plasma application
US20110101862A1 (en) 2008-05-30 2011-05-05 Il-Hyo Koo System and methods for plasma application
US20120066926A1 (en) 2008-06-09 2012-03-22 Kuniyil Prabhakaran Non-toxic multifunctional nanoparticles using sonication-aided incorporation of dopants
US8449603B2 (en) 2008-06-18 2013-05-28 Boston Scientific Scimed, Inc. Endoprosthesis coating
US20100000874A1 (en) 2008-06-24 2010-01-07 Sundrop Fuels, Inc. Various methods and apparatus for solar assisted fuel production
US20100003204A1 (en) 2008-07-02 2010-01-07 Energy Materials Corporation Nanoparticle hybrid sunscreens
US8748111B2 (en) 2008-07-31 2014-06-10 Massachusetts Institute Of Technology Multiplexed olfactory receptor-based microsurface plasmon polariton detector
US20100069229A1 (en) 2008-09-04 2010-03-18 The Hong Kong University Of Science And Technology Method For Synthesising A Nano-Product
US8840863B2 (en) 2008-09-04 2014-09-23 The Hong Kong University Of Science And Technology Method for synthesising a nano-product
US20110262312A1 (en) 2008-09-12 2011-10-27 Cuong Pham-Huu Photocatalysts based on structured three-dimensional carbide, in particular b-sic, foams
US8628726B2 (en) 2008-09-12 2014-01-14 Centre National De La Recherche Scientifique Photocatalysts based on structured three-dimensional carbide, in particular β-SiC, foams
US20110245074A1 (en) 2008-11-10 2011-10-06 Wilson Smith Photocatalytic structures, methods of making photocatalytic structures, and methods of photocatalysis
US8975205B2 (en) 2008-11-10 2015-03-10 University Of Georgia Research Foundation, Inc. Photocatalytic structures, methods of making photocatalytic structures, and methods of photocatalysis
US8231980B2 (en) 2008-12-03 2012-07-31 Boston Scientific Scimed, Inc. Medical implants including iridium oxide
US20120041285A1 (en) 2008-12-04 2012-02-16 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US20120041286A1 (en) 2008-12-04 2012-02-16 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US20110208026A1 (en) 2008-12-04 2011-08-25 Goodall Eleanor V Systems, devices, and methods including implantable devices with anti-microbial properties
US20120010481A1 (en) 2008-12-04 2012-01-12 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US20110297846A1 (en) 2008-12-04 2011-12-08 The Regents Of The University Of California Electron injection nanostructured semiconductor material anode electroluminescence method and device
US8847476B2 (en) 2008-12-04 2014-09-30 The Regents Of The University Of California Electron injection nanostructured semiconductor material anode electroluminescence method and device
US20110295089A1 (en) 2008-12-04 2011-12-01 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US20110208023A1 (en) 2008-12-04 2011-08-25 Goodall Eleanor V Systems, devices, and methods including implantable devices with anti-microbial properties
US20110295090A1 (en) 2008-12-04 2011-12-01 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US20110295088A1 (en) 2008-12-04 2011-12-01 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US20110275912A1 (en) 2008-12-04 2011-11-10 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US20110208021A1 (en) 2008-12-04 2011-08-25 Goodall Eleanor V Systems, devices, and methods including implantable devices with anti-microbial properties
US8585627B2 (en) 2008-12-04 2013-11-19 The Invention Science Fund I, Llc Systems, devices, and methods including catheters configured to monitor biofilm formation having biofilm spectral information configured as a data structure
US20120041287A1 (en) 2008-12-04 2012-02-16 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US8415556B2 (en) 2008-12-19 2013-04-09 Applied Materials, Inc. Copper delafossite transparent P-type semiconductor thin film devices
US20120010314A1 (en) 2009-01-08 2012-01-12 The University Of Western Ontario Self-cleaning coatings
US8790614B2 (en) 2009-01-09 2014-07-29 Colorado School Of Mines ZnO structures and methods of use
US20140217330A1 (en) 2009-01-27 2014-08-07 Lawrence Livermore National Security, Llc High surface area, electrically conductive nanocarbon-supported metal oxide
US20120122652A1 (en) 2009-01-27 2012-05-17 Lawrence Livermore National Security, Llc High surface area, electrically conductive nanocarbon-supported metal oxide
US8664143B2 (en) 2009-01-27 2014-03-04 Lawrence Livermore National Security, Llc. High surface area, electrically conductive nanocarbon-supported metal oxide
US20100190639A1 (en) 2009-01-28 2010-07-29 Worsley Marcus A High surface area, electrically conductive nanocarbon-supported metal oxide
US8403239B2 (en) 2009-02-09 2013-03-26 Empire Technology Development Llc Liquid storage system, liquid container, and liquid lead-out control method
US8071156B2 (en) 2009-03-04 2011-12-06 Boston Scientific Scimed, Inc. Endoprostheses
US9018122B2 (en) 2009-03-12 2015-04-28 The Regents Of The University Of California Nanostructures having crystalline and amorphous phases
US20100261263A1 (en) 2009-03-18 2010-10-14 Duke University Up and down conversion systems for production of emitted light from various energy sources
US8618509B2 (en) 2009-03-18 2013-12-31 Immunolight, Llc Up and down conversion systems for production of emitted light from various energy sources
US8389958B2 (en) 2009-03-18 2013-03-05 Duke University Up and down conversion systems for production of emitted light from various energy sources
US20130171060A1 (en) 2009-03-18 2013-07-04 Immunolight, Llc Up and down conversion systems for production of emitted light from various energy sources
US20120040581A1 (en) 2009-04-01 2012-02-16 Centro De Estudios Investigaciones Tecnicas De Gipuzkoa Template-supported method of forming patterns of nanofibers in the electrospinning process and uses of said nanofibers
US20100258446A1 (en) 2009-04-03 2010-10-14 Board Of Regents Of The Nevada System Of Higher Education, On Behalf Of The University Of Nevada Systems including nanotubular arrays for converting carbon dioxide to an organic compound
US20130032470A1 (en) 2009-04-03 2013-02-07 Reno Systems including nanotubular arrays for converting carbon dioxide to an organic compound
US8287937B2 (en) 2009-04-24 2012-10-16 Boston Scientific Scimed, Inc. Endoprosthese
US20100304204A1 (en) 2009-05-01 2010-12-02 Synkera Technologies, Inc. Energy conversion and energy storage devices and methods for making same
US8283412B2 (en) 2009-05-01 2012-10-09 Nanosys, Inc. Functionalized matrices for dispersion of nanostructures
US8916064B2 (en) 2009-05-01 2014-12-23 Nanosys, Inc. Functionalized matrices for dispersion of nanostructures
US8624105B2 (en) 2009-05-01 2014-01-07 Synkera Technologies, Inc. Energy conversion device with support member having pore channels
US8618212B2 (en) 2009-05-01 2013-12-31 Nanosys, Inc. Functionalized matrices for dispersion of nanostructures
US8318126B2 (en) 2009-05-04 2012-11-27 Wong Stanislaus S Methods of making metal oxide nanostructures and methods of controlling morphology of same
US20100278720A1 (en) 2009-05-04 2010-11-04 Wong Stanislaus S Methods of Making Binary Metal Oxide Nanostructures and Methods of Controlling Morphology of Same
US20120152336A1 (en) 2009-06-16 2012-06-21 Pacific Northwest National Laboratory Aggregate particles of titanium dioxide for solar cells
US20120091482A1 (en) 2009-07-02 2012-04-19 Sharp Kabushiki Kaisha Organic el element, method for manufacturing the same, and organic el display device
US20110053285A1 (en) 2009-08-27 2011-03-03 Samsung Electronics Co., Ltd. Sensor using mass enhancement of nanoparticles
US20140106471A1 (en) 2009-08-27 2014-04-17 Postech Academy Industry Foundation Sensor using mass enhancement of nanoparticles
US20110226738A1 (en) 2009-08-31 2011-09-22 Korea University Research And Business Foundation Methods of forming transparent structures and electrochromic devices
US20110051220A1 (en) 2009-08-31 2011-03-03 Korea University Research And Business Foundation Transparent structures
US8432604B2 (en) 2009-08-31 2013-04-30 Korea University Research And Business Foundation Methods of forming transparent structures and electrochromic devices
US7973997B2 (en) 2009-08-31 2011-07-05 Korea University Research And Business Foundation Transparent structures
US20120235094A1 (en) 2009-11-30 2012-09-20 Dic Corporation Silica nanofiber/metal oxide nanocrystal composite and method for producing the same
US20110214996A1 (en) 2009-12-02 2011-09-08 Akihito Yoshida Hydrogen production device and method for producing hydrogen
US8632663B2 (en) 2009-12-02 2014-01-21 Sharp Kabushiki Kaisha Hydrogen production device and method for producing hydrogen
US20120281428A1 (en) 2009-12-03 2012-11-08 Research Triangle Institute Reflective nanofiber lighting devices
US8884507B2 (en) 2009-12-03 2014-11-11 Research Triangle Institute Reflective nanofiber lighting devices
US20130004778A1 (en) 2009-12-08 2013-01-03 Tucker Iii Gary D Polymeric hybrid organometalloglass
US20120265122A1 (en) 2009-12-10 2012-10-18 El-Shall M Samy Production of Graphene and Nanoparticle Catalysts Supposrted on Graphen Using Laser Radiation
US8629076B2 (en) 2010-01-27 2014-01-14 Lawrence Livermore National Security, Llc High surface area silicon carbide-coated carbon aerogel
US20120077006A1 (en) 2010-01-27 2012-03-29 Lawrence Livermore National Security, Llc High surface area silicon carbide-coated carbon aerogel
US20130015076A1 (en) 2010-02-08 2013-01-17 Akihito Yoshida Hydrogen production device and method for producing hydrogen
US20110200761A1 (en) 2010-02-18 2011-08-18 Takahisa Kusuura Nanoimprint lithography
US20110220855A1 (en) 2010-03-12 2011-09-15 Weir John D Self-Cleaning Coating for Protection Against Hazardous Biopathogens and Toxic Chemical Agents Utilizing Both Super Hydrophobic Effects and Suitable Oxide Interfaces
US8269214B2 (en) 2010-07-29 2012-09-18 General Electric Company Organic light emitting device with outcoupling layer for improved light extraction
US8871926B1 (en) 2010-09-28 2014-10-28 Sandia Corporation Synthesis of porphyrin nanostructures
US20130180862A1 (en) 2010-09-28 2013-07-18 Sharp Kabushiki Kaisha Hydrogen production device and method for producing hydrogen
US20130189607A1 (en) 2010-10-08 2013-07-25 Go Sakai Catalyst particles, carbon-supported catalyst particles and fuel cell catalysts, and methods of manufacturing such catalyst particles and carbon-supported catalyst particles
US20140011013A1 (en) 2010-12-20 2014-01-09 The Regents Of The University Of California Superhydrophobic and superoleophobic nanosurfaces
US8647915B2 (en) 2010-12-21 2014-02-11 Ut-Battelle, Llc Hetero-junction photovoltaic device and method of fabricating the device
US20120152337A1 (en) 2010-12-21 2012-06-21 Tolga Aytug Hetero-junction photovoltaic device and method of fabricating the device
US20130001067A1 (en) 2010-12-23 2013-01-03 California Institute Of Technology Method and system for splitting water with visible light
US8871670B2 (en) 2011-01-05 2014-10-28 The Board Of Trustees Of The University Of Illinois Defect engineering in metal oxides via surfaces
US20120172648A1 (en) 2011-01-05 2012-07-05 The Board Of Trustees Of The University Of Illinois Defect engineering in metal oxides via surfaces
US20120209090A1 (en) 2011-02-14 2012-08-16 Searete Llc, A Limited Liability Corporation Of The Sate Of Delaware Systems, devices, and methods including implantable devices with anti-microbial properties
US9040145B2 (en) 2011-02-28 2015-05-26 Research Foundation Of The City University Of New York Polymer having superhydrophobic surface
US8426817B2 (en) 2011-03-02 2013-04-23 Texas Biochemicals, Inc. Monodispersed and spherical ZnS for nano-grain optical windows
US20140147398A1 (en) 2011-03-03 2014-05-29 Wisys Technology Foundation Thermodynamic Solutions of Metal Chalcogenides and Mixed Metal Oxides and Chalcogenides
US8865113B2 (en) 2011-03-15 2014-10-21 Peerless Worldwide, Llc Facile synthesis of graphene, graphene derivatives and abrasive nanoparticles and their various uses, including as tribologically-beneficial lubricant additives
US20140227211A1 (en) 2011-03-15 2014-08-14 Peerless Worldwide, Llc Facile synthesis of graphene, graphene derivatives and abrasive nanoparticles and their various uses, including as tribologically-beneficial lubricant additives
US9023308B2 (en) 2011-03-15 2015-05-05 Peerless Worldwide, Llc Facile synthesis of graphene, graphene derivatives and abrasive nanoparticles and their various uses, including as tribologically-beneficial lubricant additives
US20140134092A1 (en) 2011-03-15 2014-05-15 Richard S. Shankman Facile synthesis of graphene, graphene derivatives and abrasive nanoparticles and their various uses, including as tribologically-beneficial lubricant additives
US20140220091A1 (en) 2011-03-18 2014-08-07 University Of Limerick Embedding nanoparticles in thermoplastic polymers
US8598266B2 (en) 2011-03-25 2013-12-03 Empire Technology Development Llc Flocculation agents for nanoparticle pollutants
US20140295102A1 (en) 2011-04-12 2014-10-02 Aldo Di Carlo Sintering process of metal oxide based formulations
US20140323946A1 (en) 2011-07-08 2014-10-30 Duke University Phosphors and scintillators for light stimulation within a medium
US20140311221A1 (en) 2011-08-25 2014-10-23 Georgia Tech Research Corporation Gas sensors and methods of preparation thereof
US20140223997A1 (en) 2011-08-25 2014-08-14 Georgia Tech Research Corporation Gas Sensors and Methods of Preparation Thereof
US20130079577A1 (en) 2011-09-28 2013-03-28 Uchicago Argonne, Llc Autogenic reaction synthesis of photocatalysts for solar fuel generation
US20140256534A1 (en) 2011-09-28 2014-09-11 University Of Connecticut Metal oxide nanorod arrays on monolithic substrates
US20140287237A1 (en) 2011-10-19 2014-09-25 Nexdot Method of increasing the thickness of colloidal nanosheets and materials consisting of said nanosheets
US20140242389A1 (en) 2011-10-19 2014-08-28 Nexdot Process for the thickness growth of colloidal nanosheets and materials composed of said nanosheets
US20130099196A1 (en) 2011-10-20 2013-04-25 University Of Kansas Semiconductor-Graphene Hybrids Formed Using Solution Growth
US8878157B2 (en) 2011-10-20 2014-11-04 University Of Kansas Semiconductor-graphene hybrids formed using solution growth
US20140326311A1 (en) 2012-01-13 2014-11-06 The Regents Of The University Of California Metal-chalogenide photovoltaic device with metal-oxide nanoparticle window layer
US20130184144A1 (en) 2012-01-18 2013-07-18 Northwestern University Methods of making non-covalently bonded carbon-titania nanocomposite thin films and applications of the same
US20130216774A1 (en) 2012-02-16 2013-08-22 Brian John Conolly Closed Cell Materials
US8993089B2 (en) 2012-02-16 2015-03-31 Zhik Pty Ltd Closed cell materials
US20130212789A1 (en) 2012-02-16 2013-08-22 Brian John Conolly Heat Reflecting Composites with Knitted Insulation
US20130252798A1 (en) 2012-03-21 2013-09-26 National Tsing Hua University Metallic sulfide photocatalyst for carbon dioxide reduction and the preparation for the same
US20130250403A1 (en) 2012-03-22 2013-09-26 Palo Alto Research Center Incorporated High infrared transmission window with self cleaning hydrophilic surface
US20140160723A1 (en) 2012-07-23 2014-06-12 Research Triangle Institute Reflective nanofiber lighting devices
US8864341B2 (en) 2012-07-23 2014-10-21 Research Triangle Institute Reflective nanofiber lighting devices
US20140056947A1 (en) 2012-08-24 2014-02-27 Christian-Albrechts-Universitat Zu Kiel Virus traps
US20140069819A1 (en) 2012-09-11 2014-03-13 Muhammad Akhyar Farrukh Zinc oxide nanoflakes for treatment of pollutants
US20140174906A1 (en) 2012-12-20 2014-06-26 Sunpower Technologies Llc Photocatalytic system for the reduction of carbon dioxide
US20140252275A1 (en) 2012-12-20 2014-09-11 Sunpower Technologies Llc System for Harvesting Oriented Light - Water Splitting
US20140174905A1 (en) 2012-12-20 2014-06-26 Sunpower Technologies Llc Photo-catalytic systems for the production of hydrogen
US8936734B2 (en) 2012-12-20 2015-01-20 Sunpower Technologies Llc System for harvesting oriented light—water splitting
US20140213427A1 (en) 2013-01-31 2014-07-31 Sunpower Technologies Llc Photocatalyst for the Reduction of Carbon Dioxide
US20140225498A1 (en) 2013-02-11 2014-08-14 Colorado State University Research Foundation Plasma catalyst chemical reaction apparatus
US20140301905A1 (en) 2013-03-11 2014-10-09 Sunpower Technologies Llc System for Harvesting Oriented Light - Water Splitting
US20140301904A1 (en) 2013-03-11 2014-10-09 Sunpower Technologies Llc System for Harvesting Oriented Light - Water Splitting
US20140262743A1 (en) 2013-03-13 2014-09-18 Sunpower Technologies Llc System for Harvesting Oriented Light for Water Splitting and Carbon Dioxide Reduction
US9005480B2 (en) 2013-03-14 2015-04-14 Nanosys, Inc. Method for solventless quantum dot exchange
US20140262806A1 (en) 2013-03-15 2014-09-18 Sunpower Technologies Llc Method for Increasing Efficiency of Semiconductor Photocatalysts
US20140272623A1 (en) 2013-03-15 2014-09-18 Sunpower Technologies Llc System for increasing efficiency of semiconductor photocatalysts employing a high surface area substrate
US20140294721A1 (en) 2013-03-29 2014-10-02 Board Of Trustees Of The Leland Stanford Junior University Doping and reduction of nanostructures and thin films through flame annealing
US20140336039A1 (en) 2013-05-09 2014-11-13 Massachusetts Institute Of Technology Anti-fingerprint photocatalytic nanostructure for transparent surfaces
US20140342254A1 (en) 2013-05-17 2014-11-20 Sunpower Technologies Llc Photo-catalytic Systems for Production of Hydrogen
US20140339072A1 (en) 2013-05-17 2014-11-20 Sunpower Technologies Llc Photocatalytic CO2 Reduction System
US20140356574A1 (en) 2013-06-03 2014-12-04 Brian John Conolly Insulated Radiant Barriers in Apparel
US20150036234A1 (en) 2013-08-01 2015-02-05 Board Of Regents, The University Of Texas System Methods and compositions related to dielectric coated metal nanoparticles in thin-film opto-electronic conversion devices
US20150122639A1 (en) 2013-11-01 2015-05-07 Brookhaven Science Associates, Llc Chemically Passivated Zinc Oxide Photoelectrode for Photoelectrochemical Water Splitting

Non-Patent Citations (24)

* Cited by examiner, † Cited by third party
Title
Bernardi, M. I. B., E. J. H. Lee, P. N. Lisboa-Filho, E. R. Leite, E. Longo, and J. A. Varela. "TiO2 thin film growth using the MOCVD method." Materials Research 4, No. 3 (2001): 223-226.
Bessergenev, V. G., R. J. F. Pereira, M. C. Mateus, I. V. Khmelinskii, D. A. Vasconcelos, R. Nicula, E. Burkel, AM Botelho Do Rego, and A. I. Saprykin. "Study of physical and photocatalytic properties of titanium dioxide thin films prepared from complex precursors by chemical vapour deposition." Thin Solid Films 503, No. 1-2 (2006): 29-39.
Bhakta, R., R. Thomas, F. Hipler, H. F. Bettinger, J. Müller, P. Ehrhart, and A. Devi. "MOCVD of TiO 2 thin films and studies on the nature of molecular mechanisms involved in the decomposition of [Ti (OPr i) 2 (tbaoac) 2]." Journal of Materials Chemistry 14, No. 21 (2004): 3231-3238.
Chen, Xiaobo, and Samuel S. Mao. "Titanium dioxide nanomaterials: synthesis, properties, modifications, and applications." Chemical reviews 107, No. 7 (2007): 2891-2959.
Corni, Ilaria, Mary P. Ryan, and Aldo R. Boccaccini. "Electrophoretic deposition: From traditional ceramics to nanotechnology." Journal of the European Ceramic Society 28, No. 7 (2008): 1353-1367.
Duminica, F-D., Francis Maury, and R. Hausbrand. "Growth of TiO2 thin films by AP-MOCVD on stainless steel substrates for photocatalytic applications." Surface and Coatings Technology 201, No. 22-23 (2007): 9304-9308.
Graves, J. E., D. Pletcher, R. L. Clarke, and F. C. Walsh. "The electrochemistry of Magnéli phase titanium oxide aeramic electrodes Part I. The deposition and properties of metal coatings." Journal of applied electrochemistry 21, No. 10 (1991): 848-857.
Heo, Cheol Ho, Soon-Bo Lee, and Jin-Hyo Boo. "Deposition of TiO2 thin films using RF magnetron sputtering method and study of their surface characteristics." Thin Solid Films 475, No. 1-2 (2005): 183-188.
Löbmann, Peer. "Coating of Polymer Surfaces by Liquid Phase Deposition of TiO2: A Biologically-inspired Approach." In Advances in Science and Technology, vol. 45, pp. 1246-1251. Trans Tech Publications, 2006.
Maeda, Masahiko. "Preparation of Titania Films with Cohered Nanosized Particles Using Improved Liquid Phase Deposition Process." Int. J. Electrochem. Sci 10 (2015): 2988-2996.
Masuda, Yoshitake, Won-Seon Seo, and Kunihito Koumoto. "Deposition mechanism of anatase TiO2 from an aqueous solution and its site-selective deposition." Solid State Ionics 172, No. 1-4 (2004): 283-288.
Mathews, Nini Rose, Erik R. Morales, M. A. Cortés-Jacome, and JA Toledo Antonio. "TiO2 thin films-Influence of annealing temperature on structural, optical and photocatalytic properties." Solar Energy 83, No. 9 (2009): 1499-1508.
Mathews, Nini Rose, Erik R. Morales, M. A. Cortés-Jacome, and JA Toledo Antonio. "TiO2 thin films—Influence of annealing temperature on structural, optical and photocatalytic properties." Solar Energy 83, No. 9 (2009): 1499-1508.
Miyauchi, Masahiro, Nobuo Kieda, Shunichi Hishita, Takefumi Mitsuhashi, Akira Nakajima, Toshiya Watanabe, and Kazuhito Hashimoto. "Reversible wettability control of TiO2 surface by light irradiation." Surface Science 511, No. 1-3 (2002): 401-407.
Ohtani, Bunsho, Yoshimasa Ogawa, and Sei-ichi Nishimoto. "Photocatalytic activity of amorphous-anatase mixture of titanium (IV) oxide particles suspended in aqueous solutions." The Journal of Physical Chemistry B 101, No. 19 (1997): 3746-3752.
Park, Sang-Moo, Tomoaki Ikegami, and Kenji Ebihara. "Effects of substrate temperature on the properties of Ga-doped ZnO by pulsed laser deposition." Thin Solid Films 513, No. 1-2 (2006): 90-94.
Plasma enhanced chemical vapor deposition (circa 2018) http://lnf-wiki.eecs.umich.edu/wiki/Plasma_enhanced_chemical_vapor_deposition.
Silickas, P., Chaim N. Sukenik, Olga Gershevitz, and Algirdas Vaclovas Valiulis. "Liquid phase deposition of TiO2 films on different substrate." In Solid State Phenomena, vol. 113, pp. 589-594. Trans Tech Publications, 2006.
Stamate, Marius D. "Dielectric properties of TiO2 thin films deposited by a DC magnetron sputtering system." Thin Solid Films 372, No. 1-2 (2000): 246-249.
Sun, X. W., and H. S. Kwok. "Optical properties of epitaxially grown zinc oxide films on sapphire by pulsed laser deposition." Journal of applied physics 86, No. 1 (1999): 408-411.
Tezza, Vanessa Brunel, Mauricio Scarpato, Luis Felipe Silva Oliveira, and Adriano Michael Bernardin. "Effect of firing temperature on the photocatalytic activity of anatase ceramic glazes." Powder technology 276 (2015): 60-65.
Yu, Jia-Guo, Huo-Gen Yu, Bei Cheng, Xiu-Jian Zhao, Jimmy C. Yu, and Wing-Kei Ho. "The effect of calcination temperature on the surface microstructure and photocatalytic activity of TiO2 thin films prepared by liquid phase deposition." The Journal of Physical Chemistry B 107, No. 50 (2003): 13871-13879.
Zeman, P., and S. Takabayashi. "Nano-scaled photocatalytic TiO2 thin films prepared by magnetron sputtering." Thin Solid Films 433, No. 1-2 (2003): 57-62.
Zhang, Xingwang, Minghua Zhou, and Lecheng Lei. "Preparation of photocatalytic TiO2 coatings of nanosized particles on activated carbon by AP-MOCVD." Carbon 43, No. 8 (2005): 1700-1708.

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